Swissi Academy for AI
Dr. Walter Kurz, MBA, M.Sc.

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Dr.Walter KurzMBA, M.Sc.

Walter Kurz teaches how enterprise AI systems are designed to hold up under regulatory review, from multi-agent architecture to distributed ledgers. He is an AI researcher, recognised as an expert by Forbes in 2024, and speaks on AI innovation and AI business models. As a professor he supervises AI doctorates at EQF level 8, both PhD and DBA, and heads the Advanced AI Studies faculty. He holds a doctorate in business administration and management from the University of Graz and an MBA in change management from the University of Augsburg. His research covers company valuation under AI integration, AI in enterprise risk management and ESG with AI, and he reviews submissions for the American Journal of Artificial Intelligence in New York.

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5,187Canonical atoms
54Canonical modules
6Canonical programmes
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34Modules
305Lessons
339Certificates
144 hLearning time

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5,187 Atoms

Advanced

What a real mandate consists of

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40 min

Authority, access, budget, the standing to refuse and a route to escalate: what has to be granted for the role to exist.

  • Difficulty
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Beginner

What stays with other people

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Board, statutory officers, process owners, technology and legal: what does not move to the officer.

  • Difficulty
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Beginner

Where you sit and who you can reach

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Reporting line, access to the accountable body, and the conflict created when the officer also owns delivery.

  • Difficulty
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Advanced

Arriving where nothing exists

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40 min

The first ninety days: no register, no policy, no budget line, and systems already running.

  • Difficulty
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Advanced

Governance proportionate to the organisation

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40 min

Forty people and no lawyer, against a group with three assurance functions.

  • Difficulty
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Beginner

What the function costs to run

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Asking for the budget and the people the apparatus needs, with a figure.

  • Difficulty
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Advanced

Knowing what you have

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40 min

The inventory: system, purpose, owner, supplier, users, affected groups, data, risk class, status.

  • Difficulty
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Advanced

The AI that arrived inside something you already bought

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40 min

Embedded features and supplier-added AI, brought into scope.

  • Difficulty
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Beginner

Keeping the inventory true

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Wiring intake, procurement, security review and change management into the register so it survives a year.

  • Difficulty
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Advanced

The policy, and the rules underneath it

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40 min

Turning principles into rules somebody can apply without asking the officer.

  • Difficulty
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Beginner

What staff may do with AI on their own

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Acceptable use, written in language people read.

  • Difficulty
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Advanced

Risk categories and appetite

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40 min

Thresholds, restricted uses, and uses the organisation will not make, translated from oversight intent into an operable taxonomy.

  • Difficulty
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Beginner

Making the organisation competent enough to comply

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Who must know what before they may propose, approve, operate or use.

  • Difficulty
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Advanced

Decision rights and approval gates

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40 min

Who may decide what, at what risk level.

  • Difficulty
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Advanced

What each gate must see

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40 min

Data, evaluation, law, security, oversight, benefit and exit as the evidence pack per decision.

  • Difficulty
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Beginner

Who sits on the body that decides

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Designing a committee that decides rather than deliberates.

  • Difficulty
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Beginner

Not everything goes through the front door

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Triage, fast lanes and a proportionate path for low-risk uses.

  • Difficulty
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Beginner

Exceptions and waivers

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Designing a path people use instead of going around the officer.

  • Difficulty
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Advanced

The decision record

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40 min

Making a decision reconstructable by somebody who was not in the room.

  • Difficulty
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Advanced

Review, re-approval and retirement

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40 min

Bringing a running system back to the gate before it drifts out of its permission.

  • Difficulty
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Beginner

Keeping an approved system inside its approval

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Supplier changes, new features and scope creep after go-live.

  • Difficulty
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Advanced

The incident and harm path

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40 min

Detection, containment and correction, built before it is needed.

  • Difficulty
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Beginner

Rehearsing it

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Running an exercise and acting on what it exposes.

  • Difficulty
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Advanced

Harm that nobody reported as an incident

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40 min

Failure that arrives as complaints, appeals and quiet workarounds rather than as an alert.

  • Difficulty
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Advanced

Disclosure and notification

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40 min

Who is told, by when, and by whom.

  • Difficulty
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Beginner

When it reaches the public

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Holding a position in front of the press and the people affected.

  • Difficulty
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Advanced

Redress for the people affected

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40 min

Designing a route that actually reaches the people who were harmed.

  • Difficulty
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Advanced

Standing routes to ask and to object

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40 min

Channels for affected people and for staff, built before they are needed.

  • Difficulty
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Advanced

Escalation, and the standing to refuse

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40 min

Stopping something, and surviving having stopped it.

  • Difficulty
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Advanced

Recording dissent when you are overruled

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40 min

Leaving a record that protects the organisation and the officer.

  • Difficulty
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Beginner

Accountability for what you do not operate

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Holding responsibility for a system somebody else runs, including a shared one.

  • Difficulty
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Beginner

Feeding security and privacy

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Supplying each function with what AI obliges it to hold, and noticing when an AI decision lands inside theirs.

  • Difficulty
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Beginner

Feeding compliance and social responsibility

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The same, for the systems that answer outward.

  • Difficulty
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Beginner

Who checks the checker

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Lines of defence, control testing and corrective action.

  • Difficulty
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Beginner

Management review on a cadence

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Performance, incidents, drift, benefit and new obligations, reviewed on a rhythm.

  • Difficulty
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Beginner

Preparing for the audit day

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Assembling continuously so the pack already exists when it is asked for.

  • Difficulty
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Beginner

Reporting to the people entitled to ask

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Cadence, contents, and how to carry the bad news.

  • Difficulty
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Beginner

Getting governance adopted

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Making an apparatus stick with people who did not ask for it.

  • Difficulty
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Beginner

Watching for what changes the picture

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Regulation, suppliers, technology and incidents elsewhere, feeding the register.

  • Difficulty
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Beginner

Assembling the management system

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Putting the pieces together so the whole holds up when it is examined.

  • Difficulty
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Advanced

Name the business problem first

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40 min

Someone brings the officer a proposal that opens with a technology and a vendor, and never says what is currently going wrong. Everyone in the room nods, because it sounds like progress, and nobody can say what would be different afterwards.

  • Difficulty
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Advanced

AI changes tasks before it changes jobs

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40 min

A proposal says it will "transform customer service" or "automate underwriting". The officer cannot tell what would actually change on a Tuesday, and neither can the people doing the work.

  • Difficulty
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Advanced

Cost, revenue, risk: where AI value lands

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40 min

The officer is asked whether an initiative is worth doing and finds themselves arguing about the technology, because nobody has said where the money or the advantage would actually appear.

  • Difficulty
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Advanced

Find the baseline

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40 min

The programme is a year old and someone from finance has asked, reasonably, what it delivered. The pilot report says the system handles the task in four minutes. Nobody wrote down what it took before, nobody kept the old volumes, and the two people who would have known have moved on. The saving may be large. It is now unprovable.

  • Difficulty
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Beginner

Efficiency and advantage are not the same thing

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Two proposals arrive. One saves money on work the whole industry does. The other would let the firm do something competitors cannot. They are presented in the same format, with the same kind of number, and are treated as comparable.

  • Difficulty
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Beginner

Defensible advantage or rented capability

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A vendor demonstration is impressive. The officer is asked whether this would give the firm an edge, and realises the same demonstration is being given to their competitors this week.

  • Difficulty
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Beginner

Data asset or data swamp

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The strategy rests on "our unique data". The officer asks to see it and finds four years of records with the important field filled in half the time, no rights to use it for this purpose, and nothing feeding back from operation.

  • Difficulty
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Beginner

The commoditisation clock

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An investment case assumes a capability stays scarce for five years. The officer has watched the same capability go from a research demonstration to a checkbox in software they already pay for, twice.

  • Difficulty
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Advanced

The bill that grows with success

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40 min

The business case is approved on a build figure. A year later the bill has grown with usage, nobody budgeted for it, and success has made the finances worse.

  • Difficulty
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Advanced

The costs outside the invoice

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40 min

The vendor quote is the number in the paper going to the board. It omits integration, evaluation, monitoring, support, retraining and the change effort, all of which land on the organisation. Two more that are always missing: somebody internally has to own this product, and somebody has to do the assurance and approval work.

  • Difficulty
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Advanced

The cost of being wrong, and the cost of checking

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40 min

The system is 92 percent accurate and everyone is pleased. Then somebody asks how the reviewer is supposed to know which cases are in the 8 percent. If telling requires redoing the work, the review costs close to the full task rather than eight percent of it, and the saving was never there.

  • Difficulty
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Beginner

Who captures the gain

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The efficiency arrives exactly as promised. Within a year every competitor has it, prices have moved, and the customer has the benefit while the firm has the cost.

  • Difficulty
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Beginner

Adoption risk, read inside the case

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The pilot worked. Twelve months later the tool is installed, the benefit case still shows the original figure, and half the team have gone back to the old way of doing it.

  • Difficulty
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Advanced

Read an AI proposal like an owner

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40 min

A complete, professional, plausible AI proposal arrives with a decision expected this week. It is the officer's judgement that stands between it and the budget.

  • Difficulty
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Advanced

A strategy is what you decline

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40 min

Choosing means foregoing. A plan that rules nothing out has committed to nothing, and this is the sitting where a learner writes the sentence most AI strategies avoid.

  • Difficulty
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Advanced

From ambition to an AI thesis

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40 min

Turning a general wish to use AI into one sentence about how this organisation intends to win with it, and turning scattered pilots into a position.

  • Difficulty
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Beginner

What this does to the industry, not only to you

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Reading the change one level up: what happens to the sector when everyone has the capability, and where that leaves this organisation.

  • Difficulty
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Advanced

Rank the placements

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40 min

Turning a list of possible AI uses into a defensible order, on value, feasibility, data readiness, risk and reversibility.

  • Difficulty
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Advanced

Allocate across horizons

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40 min

How much money, across how many bets, over what time: the proportions that turn a ranked list into a portfolio.

  • Difficulty
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Beginner

When AI changes what you sell

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The point where AI stops improving the existing business and starts altering the offering itself.

  • Difficulty
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Beginner

Choose the pricing model

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Seat, usage, outcome, bundle or tier, and what each does to customer behaviour and to your own economics.

  • Difficulty
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Beginner

Protect margin under usage cost

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Keeping an offering profitable when the cost of serving it rises with how much it is used.

  • Difficulty
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Advanced

Build, buy, partner, invest or acquire

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40 min

The sourcing decision taken as an argument about what has to be owned to hold a position, rather than as procurement.

  • Difficulty
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Beginner

Price the dependency

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What the supplier owns after signature, and what it would cost to leave.

  • Difficulty
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Beginner

Lead, follow fast, or wait

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Whether timing is decisive for a particular move, and what each posture costs.

  • Difficulty
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Beginner

Options the law may remove

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Writing a strategy that survives finding out which of its branches are foreclosed, restricted or expensive to defend.

  • Difficulty
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Beginner

Commit under uncertainty

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Signing a strategy before anyone knows the capability will reach the required quality: staging, thresholds and kill criteria.

  • Difficulty
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Advanced

Write the strategy artefact

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40 min

Producing the document itself: what an AI strategy contains and how the parts hold together.

  • Difficulty
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Advanced

Defend the board case

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40 min

Holding the position under the four questions a board actually asks: what it costs, what it returns, what a competitor could do about it, and who carries the risk.

  • Difficulty
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Advanced

Set the operating calendar

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40 min

The shift from running projects to running a function: what happens monthly, quarterly and annually, and who is in the room for each.

  • Difficulty
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Advanced

Intake and triage

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40 min

Building the path AI requests arrive through, and finding what is already running that nobody asked about.

  • Difficulty
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Advanced

Run the portfolio review

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40 min

The recurring decision: what gets funded this cycle, what continues, what stops, what scales.

  • Difficulty
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Beginner

Budget for growing use

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Budgeting a cost that rises with adoption rather than a project that finishes, and handling the variance.

  • Difficulty
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Advanced

Track cost per unit of work

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40 min

Measuring what a unit of output actually costs in operation, and watching that number move.

  • Difficulty
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Beginner

Adoption as workflow redesign

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Changing the work rather than deploying a tool into work that stays the same.

  • Difficulty
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Advanced

The people whose jobs change

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40 min

Carrying the organisation through a change that alters what people do, and what is owed to them while it happens.

  • Difficulty
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Advanced

Prove benefit honestly

Sw2:academic01:obj:p1:wuypbhaczosuw7vkwjcx44s3hl4pe2zh5giirij4gwnqcpdglina:2ba7292a

40 min

Producing evidence of benefit that a sceptical finance function accepts, rather than a number the programme produced about itself.

  • Difficulty
Start
Advanced

Act on the benefit gap

Sw2:academic01:obj:p1:hemwzqsuxbhjmxhpcsley3jh7d5eu4plhjkge5qq4voyjcbrrfyq:60a88044

40 min

What to do when the benefit did not arrive: continue, pause, stop or scale, and defending the call.

  • Difficulty
Start
Beginner

Watch the system that worked last quarter

Sw2:academic01:obj:p1:6dtas6f5pbpvo75j3l4qvzhdxx3rkz5bsiymtsovmygv6skzp4sq:ac1cafea

Drift, degradation, and the supplier model change nobody told you about.

  • Difficulty
Start
Beginner

Hold the supplier after signature

Sw2:academic01:obj:p1:3decyoshq4y22fwaivyl3mqrmsrykebl6l47a4fcvehluwvuzllq:53982400

Running the relationship as a live thing: performance, changes, renegotiation, and the review the contract entitles you to.

  • Difficulty
Start
Beginner

Stop dependency creep

Sw2:academic01:obj:p1:rfyei3c7c542dij7sybn3v4jz4flrst2dfjlt556qoznusffp64q:c3cd2946

How reversibility is lost quietly, and what has to stay in-house to keep a decision open.

  • Difficulty
Start
Beginner

Build the internal capability minimum

Sw2:academic01:obj:p1:sou2zimpqw7xg3xp5d5v22ab72mkcy2cxd3qexabzpdokuuyfh6a:34a72ef2

Deciding what the organisation must be able to do itself, and building for that rather than for everything.

  • Difficulty
Start
Beginner

Report the function honestly

Sw2:academic01:obj:p1:7zddpd3fo22awj3dncxywc5s5qftu755cxhpifipdwbnizqkdofa:b4645d47

The standing account to the people entitled to ask: benefit, performance, risk position, and what went wrong.

  • Difficulty
Start
Advanced

Reopen the strategy when the evidence overturns it

Sw2:academic01:obj:p1:oijdp6nlmk3hum5a3zjdw2tommbmlhxev2kezs3pevcsevkkokba:a009e45b

40 min

Reading operating reality back against the thesis, concluding it is wrong, and forcing the revision.

  • Difficulty
Start
Advanced

The words people use in the room

Sw2:academic01:obj:p1:eybv2ztsuatmv25cwowv6iauvujy2nt4cermuahruyqxhl56vyoa:e99ab46e

40 min

Model, training, fine-tuning, prompt, token, context, inference, agent: the vocabulary of a technical meeting, defined well enough to follow one.

  • Difficulty
Start
Advanced

What learning from data actually means

Sw2:academic01:obj:p1:2lsk2tvoyate3j25ru2esaqcxaqivemouc2dvlmugr7ooj6rwa4a:173d8653

40 min

How a model is fitted to data rather than programmed with rules, and what follows from that difference.

  • Difficulty
Start
Advanced

Where the data came from, and what it leaves out

Sw2:academic01:obj:p1:oz26jn5c7uw36bqbbxaemigbnztbyrqi3j425fyz4nzjtfjuldfa:8cd507ce

40 min

What population a training set represents, and who is missing from it.

  • Difficulty
Start
Beginner

The label is not the thing you care about

Sw2:academic01:obj:p1:coc25jcmimqzzkm6o7dwkyx7x25tkfm2eas6aglyrvpxurisowtq:ab349d07

The gap between the outcome an organisation cares about and the measurable thing standing in for it: readmission measured as a billing code, a good hire measured as three years of tenure.

  • Difficulty
Start
Advanced

The four ways a system gets its behaviour

Sw2:academic01:obj:p1:q557lymrwiiugykmxnv2mxwsgkcytc7ouupsg62v5pamll5ywyoa:99386637

40 min

Trained, fine-tuned, prompted, grounded on your documents: which knob a supplier is turning, and what each one can and cannot fix.

  • Difficulty
Start
Advanced

The kinds of system you will be offered

Sw2:academic01:obj:p1:nvsuebacyx7o4ste2zg4zdx6ufzzdgmyva5rqzutim5pje7esckq:5b42d2da

40 min

Predictive, generative, retrieval and acting systems, and what each is genuinely for.

  • Difficulty
Start
Advanced

When the boring method is the right answer

Sw2:academic01:obj:p1:77suryl2dtrzqwukaojwgl4re5j253hegykigx72cuazggdzl3ea:f4505ea3

40 min

Problems that do not need a language model, and how to notice them before the project starts.

  • Difficulty
Start
Advanced

Why the output is probabilistic

Sw2:academic01:obj:p1:u4xdfynxqtl6glnrjh2ox5jhljnq77zqxwhkphf4smviojxbdu7q:8bfcfbf0

40 min

Why the same question can produce different answers, and where that rules a use in or out.

  • Difficulty
Start
Advanced

Why it makes things up

Sw2:academic01:obj:p1:dqgzppnjdxzy5lmwjncbvhamaehxxrfmhjerffq62drhmbbbmmnq:ca47e4d3

40 min

Fluency without a truth check, read as a mechanism rather than as a bug.

  • Difficulty
Start
Beginner

Confident and correct are different things

Sw2:academic01:obj:p1:55dtopajiu26rxmqwe7bvowyc6c3rk64225pcy7aqin53w65glga:39af331f

Calibration: how a system's expressed confidence relates, and fails to relate, to whether it is right.

  • Difficulty
Start
Beginner

What the system cannot see

Sw2:academic01:obj:p1:gr67a7koqn5uhgqcqu6iu6i5ivnmpmq5igtxgm4dxw4bgzsdk5uq:5e1c71c4

Context limits, cut-off dates, and the document that was silently truncated.

  • Difficulty
Start
Beginner

Where error comes from

Sw2:academic01:obj:p1:3i4sljmbdviq2sjh4ftbbd3rshglzzio4mcpc7klm4iggta62fza:a95ad68b

Data, objective, deployment context and user behaviour as the four sources, and how to tell which one you are looking at.

  • Difficulty
Start
Beginner

Behaviour outside what it has seen

Sw2:academic01:obj:p1:ouptegfc2ugr53gzslle2vmgi6of6hkgqt7i6xqfsfnf63twggza:76ebeba1

What happens at the edge of the training distribution, and how to predict where a system will fail first.

  • Difficulty
Start
Beginner

What the training data does to the behaviour

Sw2:academic01:obj:p1:kgzehh5jep2akhdknqpad4sr7v4yvybqyvibfayoco22g4njeftq:5309c4c0

Bias as a mechanism rather than an accusation: how the composition of data shapes what a system produces.

  • Difficulty
Start
Beginner

Who labelled it, and how well

Sw2:academic01:obj:p1:5ua7ues3mdfthmai3nomy5ccnjwsiiv2oge7rh3vnch5punpmnyq:c4879208

Where ground truth came from, who produced it, under what conditions, and how much to trust it.

  • Difficulty
Start
Advanced

Retrieval and grounding

Sw2:academic01:obj:p1:yx2aw5gin6jtbbzglt76y4y4rspgckz7jvfikhwlg325ubpntwaq:342050b2

40 min

Why a system does not know your documents until it is made to, and what grounding does and does not fix.

  • Difficulty
Start
Advanced

When a system can act, not only answer

Sw2:academic01:obj:p1:skjrewjzorl6c5kwckok3xt5jh4sryusxbwcmietlcvv4qxllulq:fc467754

40 min

What changes once a model holds tools, credentials and the ability to take actions.

  • Difficulty
Start
Beginner

Systems that see, read and speak

Sw2:academic01:obj:p1:bkwokd6gc6spkgkwj37yawkc6erxn6nxgafix3k7xmx4q74tqlsq:b2adaee0

Images, voice, documents and synthetic media: what these systems do well, where they fail, and where fabricated media becomes a live risk.

  • Difficulty
Start
Advanced

Accuracy is the wrong number

Sw2:academic01:obj:p1:6kjgfgbhkbv5mwmhwratu64bag6zxf7vri53dwwivtwsb7p6e3ua:b3f6010e

40 min

Precision, recall, and what a rare event does to both.

  • Difficulty
Start
Beginner

Which error would you rather have

Sw2:academic01:obj:p1:eodlhw3isama6k6jzpokfe2rwzdlkxyiyx5nzjfqjd6avwev7ccq:b1a1ad48

False positives against false negatives, chosen deliberately and in advance.

  • Difficulty
Start
Beginner

What a benchmark tells you and what it hides

Sw2:academic01:obj:p1:pzuqblc3w6v3ry3zom6tko3ghc534wqbgesgwg7pjlqpwnepsbca:5f8b3d27

How to read an evaluation claim, and what a benchmark result does not establish about your own use.

  • Difficulty
Start
Beginner

Why the demo always works

Sw2:academic01:obj:p1:k4ququaokayrl7at2oobi5edeoxesnixfsdqiekq57geb5idbq2q:22deaf91

What a demonstration is selected to show, and what turns it into evidence.

  • Difficulty
Start
Advanced

Why these systems are attackable at all

Sw2:academic01:obj:p1:otj67mqnimyignsyhifcdquw5lx4f2eq2yqpxyc6ql3n4by5zvaq:79573859

40 min

Attack surface as a consequence of the mechanism: a system that takes instructions from text cannot fully separate instruction from content.

  • Difficulty
Start
Advanced

Making it say and do things it should not

Sw2:academic01:obj:p1:6viergsj7u2fpcerxf52g7spbhudonzuvcujygpfinfmzabiwxta:ef79fe28

40 min

Injection through content the system reads: an email, a document, a web page becoming an instruction.

  • Difficulty
Start
Beginner

Getting data back out

Sw2:academic01:obj:p1:hnbazl45y2bl36eq374pigrm3kivndaxcbtwv3qtbuhso774mohq:93118133

Memorisation and extraction: what a model can reveal about what it saw.

  • Difficulty
Start
Beginner

Corrupting what it learns from

Sw2:academic01:obj:p1:5bfp4wt3c7lxwojrqopajvnkii24wnjqu7i4l6tagdkqhbslcd4a:fee3fdf9

Poisoning, and the provenance of a model or dataset somebody downloaded.

  • Difficulty
Start
Advanced

The claim you cannot check yourself

Sw2:academic01:obj:p1:dcd4zkp6du326pjzzf2zvumtcrxlmvib6kxgv7rvpzcybfiweewq:52a1f687

40 min

Where the officer's own competence ends, and how to get an answer they can rely on.

  • Difficulty
Start
Advanced

From a use case to a system boundary

Sw2:academic01:obj:p1:5qu7blffiorksciluvgl4ibyidarpgzjxuyl33a3fhonea3oflwq:82714580

40 min

Drawing the edge of the thing being commissioned: user, task, data, decision, output, handoff.

  • Difficulty
Start
Advanced

The parts of an AI system, end to end

Sw2:academic01:obj:p1:e52gnnlcmqfqh5pktv4qomziflf2jghhhwshrtwhioric7malo2a:98d27a3b

40 min

From source data through to a person acting on an output, and what sits between.

  • Difficulty
Start
Advanced

What "good enough" means for this use

Sw2:academic01:obj:p1:jsqyzgreors2pbjyldvbk4qqs35krkjpxh3fybwptynzrsvxstyq:76ca67b7

40 min

Setting the standard a system must meet before anyone builds or sells one.

  • Difficulty
Start
Advanced

Where the floor is not yours to set

Sw2:academic01:obj:p1:b5gpuqtsfmiqpxy64vsgplg4wj5xmi7u7fokplkc2jhd3c6czsya:d0cef6fe

40 min

Uses whose minimum standard comes from regulation, professional duty or the consequence of error, rather than from the organisation's preference.

  • Difficulty
Start
Advanced

Where the test cases come from

Sw2:academic01:obj:p1:d2agv5sxo6777ozcjefb36xolxfcwu2iyy34v6zkrgu6ihhzywmq:c5923d4e

40 min

Assembling evaluation material out of the organisation's own reality, including the awkward cases.

  • Difficulty
Start
Advanced

Designing an evaluation that tests honestly

Sw2:academic01:obj:p1:y5pbraultw7anff3hpghnrgmhzrm2sfl3go5bcgnkksdmwbwhmpq:ac33da1c

40 min

Data held back, and who marks the paper.

  • Difficulty
Start
Advanced

Evaluating what you cannot score simply

Sw2:academic01:obj:p1:bpuh5gd4bcyfodnkra6rb4bv5hju6ao7beiznkaxpeaa2bq552eq:adf85dfc

40 min

Rubrics, expert review, and what to do when the experts disagree.

  • Difficulty
Start
Advanced

Testing it on the people it will actually meet

Sw2:academic01:obj:p1:dhtjamwzspmc67rvzsyvbxmhvraae6r4dkw7gtnqvzftn54yrmha:45dbb634

40 min

Results broken down by subgroup, language, name, and edge population, rather than averaged.

  • Difficulty
Start
Beginner

Trying to break it before somebody else does

Sw2:academic01:obj:p1:o4hea5xhkpzchfbrv4fwqzjlyz3dot6zxymsxu7eewdximdrefsq:593da403

Specifying an adversarial test and reading the report it produces.

  • Difficulty
Start
Beginner

The pilot that proves something

Sw2:academic01:obj:p1:javzmx7u3pjdxy67adqbg6yxxwrq2iv6imw3czadmgdalbzjxzra:5bdfe878

A trial with a stated question, an end date and a stop available.

  • Difficulty
Start
Beginner

The data supply you inherit

Sw2:academic01:obj:p1:oykdud7jwhibmtae3zcvcvynojhz4w4jszewjdrzy5gibcaq6nla:49c0784d

Coverage, rights, freshness, lineage and operational availability of the data a system will depend on.

  • Difficulty
Start
Beginner

Provenance as a condition of acceptance

Sw2:academic01:obj:p1:ra5q6oaymiflmn25ipghfo62oyu5hykefxw7vw26h6ziwpk6o64q:fd290a62

Requiring proof of where data and models came from before taking delivery.

  • Difficulty
Start
Advanced

Human oversight as a design decision

Sw2:academic01:obj:p1:6vldgpnpf2jtzownkmrtri2m4wxguxzcsyuiezzkt4ycr3j2y4fa:6f922cda

40 min

Where a person sits in the process, and what authority they actually hold.

  • Difficulty
Start
Advanced

Can the reviewer actually keep up

Sw2:academic01:obj:p1:c2o6vayiygwpriqwmsh6yscxrgdxfbezbn2za7af6i7co3kcqdoa:225d71f6

40 min

Volume, seconds per case, and oversight that is arithmetically impossible.

  • Difficulty
Start
Beginner

The person who stops disagreeing

Sw2:academic01:obj:p1:usl7xaphpqtx4kwlonijemviviwid3ewujnjmeaxbygqqfzeebvq:6511f413

Automation bias, and how the interface causes it.

  • Difficulty
Start
Beginner

Telling the user what they are looking at

Sw2:academic01:obj:p1:xwntq6xgipsg5njyxrgkq4emxqxzpfuj2swie3kxtjevt5ukzulq:a5e0a1a7

Uncertainty, sources, and what the screen has to show for the output to be used properly.

  • Difficulty
Start
Beginner

Designing for the wrong answer

Sw2:academic01:obj:p1:llrxpqxtoqyrdl2qr4cmbu36vzzgdyaevk72qsupmoygwaddvhbq:f950a690

Fallback, containment, blast radius, appeal and rollback: what happens when it is wrong, decided before it is.

  • Difficulty
Start
Beginner

When the service is simply not there

Sw2:academic01:obj:p1:bpygtkkgsyacmbeavzohmupn2g4w4k6hlez24t5b3bokfngvbjma:073ba548

Outage, rate limit and degraded mode, and what the organisation does that morning.

  • Difficulty
Start
Advanced

Containing what the system may reach

Sw2:academic01:obj:p1:ou22vxtlirg7azypwi53audyhhrulwjhq5bfmcbkv6awwqzzufxq:65f290e0

40 min

Permissions, credentials and the boundary around a system that can act.

  • Difficulty
Start
Beginner

Securing the parts nobody calls the model

Sw2:academic01:obj:p1:c62dt46odmi2ludizhlzn2qqf6tyizdlfo66n5xai4lv6b3j3ueq:a0e5a508

Prompts, retrieval stores, logs and integrations as part of the security surface.

  • Difficulty
Start
Advanced

Watching it after it goes live

Sw2:academic01:obj:p1:5uidhnlblukqkn6hd63kix3f3tsuwafyj327dlz6gjoidl7sjela:bc0225fc

40 min

Drift, quality, incidents and supplier change: what is monitored and what triggers a look.

  • Difficulty
Start
Advanced

Building it so one past decision can be reconstructed

Sw2:academic01:obj:p1:gbtp2bv65nvdrtdggixeilium5nb5oha3dpvuqver53pz2ajfdqq:04c46538

40 min

Logging, versioning and audit trail designed in, including how to do it without retaining what should not be kept.

  • Difficulty
Start
Beginner

Changing it without breaking it

Sw2:academic01:obj:p1:kh6cgmecrwc7kr5kps3nwv6sopm5sr5sfnbkv5ibxakepvpqbizq:5fe46426

Prompt and configuration changes treated as releases.

  • Difficulty
Start
Beginner

Fitting into work that already exists

Sw2:academic01:obj:p1:4iedsaytpush24huw2wouhg4ss3fhu2pyt6mlcqdh7gwvjr2iyta:0f68bc19

Disruption, training need and process ownership: the cost of integration into work as it is done today.

  • Difficulty
Start
Beginner

Reaching everybody it is meant to serve

Sw2:academic01:obj:p1:bv3nefa4pap56gr3zqwkespsskbav2nlroer2lchhbuiwtk6ujuq:ad22db33

Accessibility, language, and the person who cannot use the channel at all.

  • Difficulty
Start
Beginner

Systems run once for many organisations

Sw2:academic01:obj:p1:v66nwuucj5t5xptzkxadus5jbbucetcugkjzywq47cgpsmuag4la:e160fd81

Designing or joining a system that serves several institutions at once.

  • Difficulty
Start
Beginner

Designing the end of it

Sw2:academic01:obj:p1:ijhnx4yfxd6za2xrnsanz4cv5btmcgsetnt5mv7j6xzorz5dgd5q:0e929aba

Suspension, retirement, what happens to the data, and what takes over.

  • Difficulty
Start
Advanced

Writing the specification

Sw2:academic01:obj:p1:phd3jbuspz67ta5z3m325xs3hy7wvgrtoebanbhqxldzztcfnqdq:28b0f0db

40 min

Producing something a supplier can answer and the organisation can hold them to.

  • Difficulty
Start
Advanced

Accepting or rejecting what arrives

Sw2:academic01:obj:p1:gy7xx6623wncof5p2rkmo6whbaddoyze2arfmwn7ewkse65li7jq:ab01088c

40 min

Running acceptance against stated evidence rather than supplier confidence, and being willing to refuse.

  • Difficulty
Start
Advanced

The five things that actually differ between offers

Sw2:academic01:obj:p1:cgec4wk55tyhnd4qo6oosdg4ho7wuk5ymcdbuspgeflopo6at67a:2b3cc39d

40 min

Comparing two proposals on what decides the outcome rather than on feature lists.

  • Difficulty
Start
Advanced

Where the system runs, and what that decides

Sw2:academic01:obj:p1:diocbbu4zewn4xf34mgblrzmwxwirfsmfvqz5g227xwvlntyjldq:d584df5e

40 min

Cloud, on-premise, sovereign, sectoral, shared: what each choice commits an organisation to.

  • Difficulty
Start
Advanced

Whose ground it sits on

Sw2:academic01:obj:p1:uwgk5zw44avawxgedl7wxwyeir2w6i26txan7ky5xpid37cx6toq:355bb611

40 min

Residency, sovereignty, and access by a party the organisation never contracted with.

  • Difficulty
Start
Advanced

Where models come from

Sw2:academic01:obj:p1:vx35wl26whcnzlvpwjkf3bkutc5tbzf45ewmcz7p2vobnzotvkia:873a44b2

40 min

Open weights, closed, hosted, licensed, and what each implies for control, cost and dependency.

  • Difficulty
Start
Advanced

"Open" is a licence question, not a mood

Sw2:academic01:obj:p1:o5camtozlppkpwv7inq7homqtacloyqz4ahlh2bwh5voeqgcz3nq:1f457ee6

40 min

Reading a model licence and saying what use it actually permits.

  • Difficulty
Start
Advanced

What happens to what you type in

Sw2:academic01:obj:p1:oj2jpbc6cm5eupnujkuzajzcznxwfcobhk5o7npqwpam5xanhhxa:0d4dc38f

40 min

Prompts, uploads, logs and feedback: whether they train somebody else's system, and what the setting in the admin console actually changes.

  • Difficulty
Start
Beginner

The supply chain behind a model

Sw2:academic01:obj:p1:mzco464gb757bdyaknpcijcfp7yiqnasucafrq7ixa7fiq2sbita:7edf986c

Subcontractors, model providers, data providers and infrastructure: what you depend on without having chosen it.

  • Difficulty
Start
Beginner

What running it yourself really requires

Sw2:academic01:obj:p1:vseaxzo2ujhyhe6kyw6cxiozpsw7irtm4vhi3xvhuihfjooqzq5q:15786f3d

People, hardware, upgrades and somebody on call: the honest price of the in-house option.

  • Difficulty
Start
Advanced

How cost behaves as use grows

Sw2:academic01:obj:p1:dz4eazr6yvvvoagvcrrdbpr676b42iz4xqjcoarq4m4cjhh3f4yq:2f6dffcd

40 min

Inference, storage, monitoring, support and review labour at ten times today's volume.

  • Difficulty
Start
Beginner

The price list is theirs, not yours

Sw2:academic01:obj:p1:wgsevdx4xe57ajrp7jw7nlutjioyw7qaezvlefzamsi47g45ckoa:7755b2c6

Repricing, tier removal, and the free tier that ends.

  • Difficulty
Start
Beginner

The model changing underneath you

Sw2:academic01:obj:p1:2y2abyqsqatw5qpn2j3bmjxrgj4qehkckcbvg2kwoqxmhvh3d7qa:52f148fe

Versions, pinning, notice periods, regression testing and deprecation.

  • Difficulty
Start
Beginner

Will it hold up on a Monday morning

Sw2:academic01:obj:p1:lzrosp7k3nhc6g2lmpczkrq2vyz27elmlo2nv76izwqpgv73j4ha:6ec15b02

Latency, capacity, availability and accessibility as thresholds set before signature.

  • Difficulty
Start
Beginner

Fitting into how you control access

Sw2:academic01:obj:p1:fhszsfiftzgy2u7lbpmfsjqizg3ylsye2cca6k656pedi3sjezgq:e8420352

Identity, least privilege, tenant separation and logging: the integration the security function will demand later.

  • Difficulty
Start
Beginner

Running a fair comparison between suppliers

Sw2:academic01:obj:p1:rp5qhcvi6izs3udxjilrgoewmsvb3vkbsc74ronydf5itzxfrgla:139118f8

Designing a comparison whose result means something.

  • Difficulty
Start
Advanced

Judging the supplier, not only the product

Sw2:academic01:obj:p1:qcezx5ds3mfgmc2s3m7x77f36hrypvyhahhkglg74cyvm7lqhi6a:54588cab

40 min

Viability, ownership and acquisition: what happens to you if they are bought or fold.

  • Difficulty
Start
Beginner

When everyone depends on the same two providers

Sw2:academic01:obj:p1:wsnpwrfu7pkwkxds7e7lcvyarohva26pjpytz5n2yw4mmy3apfxa:fdf3d771

Concentration, and the outage or policy change that reaches a whole sector at once.

  • Difficulty
Start
Advanced

What lock-in actually consists of

Sw2:academic01:obj:p1:3r7dzb6debfilnnsyg6h7zyrhwlg6wc6o36ssic6vhv25piaq4yq:e23de8f4

40 min

Data, workflow, prompts, indexes, formats and accumulated know-how: the things that make leaving hard.

  • Difficulty
Start
Advanced

Designing the exit before you need it

Sw2:academic01:obj:p1:j5ow2xg2blholnfkxkkbhc3ejh2mc3xjtdpphh2hju2jlilzbnrq:11f48239

40 min

Specifying an exit that would actually work.

  • Difficulty
Start
Beginner

The tools nobody procured

Sw2:academic01:obj:p1:twl7k34ujltndzck4wqjfxeuciujldvxsxeqihrnhuwc37iq5pgq:61084422

Free tiers, personal accounts and AI switched on inside software already owned.

  • Difficulty
Start
Beginner

Buying under procurement rules

Sw2:academic01:obj:p1:pj4w5pjqt5eceiezpmseqgxr7uqkshssq6c7vbmxkfea2en7hqaa:906da982

Working inside rules that can remove the option you judged best.

  • Difficulty
Start
Beginner

Buying together

Sw2:academic01:obj:p1:xcfrgd7olprzz2f3xurmofigytlobofb6kz3cywsz6zj4ovysbqa:b8d47174

Frameworks, joint purchasing, and peer institutions pooling one system.

  • Difficulty
Start
Beginner

Shared and multi-tenant operation

Sw2:academic01:obj:p1:alrwdofwx4p64tua7sh7c5nat7jdctbstrqybgj3mzunu6tr4dtq:9ea644e1

Judging a platform that serves many institutions at once.

  • Difficulty
Start
Beginner

The footprint of the choice

Sw2:academic01:obj:p1:77npbsfa6uigdytmq3cf4kspmn6elavj3gph3ec6lc7lp2taipea:9762252e

Energy, water and what the organisation will be asked in public.

  • Difficulty
Start
Beginner

Keeping your own map current

Sw2:academic01:obj:p1:hupfbnf7s6x7bla4jrqem7cvmqm47ucazqpg2iu3s3gtvhjc4ykq:3e20a694

A routine for staying current without living in the news.

  • Difficulty
Start
Advanced

The assembled sourcing position

Sw2:academic01:obj:p1:lsa3fjxfevcel7qo3pofowg2crs2pu5nbc3hgo5wvy4pr6njn6qq:e55c1730

40 min

One defensible answer on what to acquire, from whom, on what terms and with what exit.

  • Difficulty
Start
Advanced

The fact pattern you will keep reusing

Sw2:academic01:obj:p1:c6fv6t56wlgputgdou4ziznemc67taezw6jfcimue6sizadbjhjq:4b9dcf06

40 min

Writing down the facts every legal question in this module is answered from: the system, its users, the people affected, who provides it, who deploys it, and where.

  • Difficulty
Start
Advanced

What AI regulation is trying to do

Sw2:academic01:obj:p1:t2avra5ysx4be73ylov2taa54ke74iu3ejeslust4spu2zj7nhya:e2c0d06b

40 min

The logic behind the rules: risk to people, accountability along a chain, and evidence that something was done.

  • Difficulty
Start
Advanced

Is this even an AI system in the legal sense

Sw2:academic01:obj:p1:shpju5ddvi23njb6izlup65lfpyk57y2cwjtyf435i6hxz7zurta:35facf67

40 min

Definitions and scope, including the spreadsheet or rules engine nobody thought counted.

  • Difficulty
Start
Beginner

Reading the instrument yourself

Sw2:academic01:obj:p1:n3dcm3x6q4zsannfvtm5aukwqcxgzvu2kkwgulpaxak7pxqs6r7q:98906b01

Scope, definitions, obligations and annexes, and where the operative sentence actually hides.

  • Difficulty
Start
Advanced

Uses that are simply not allowed

Sw2:academic01:obj:p1:bjuqc5m7emwsfhth5hmyfri5xoswq5qwyfsp4hch4fbqh3ggr7xa:c30de26c

40 min

Prohibited practices, and recognising one early enough to stop it cheaply.

  • Difficulty
Start
Advanced

Classifying a system by risk

Sw2:academic01:obj:p1:33hajmh7wyfpqq6zei4mgih3lfc4xdldkkc6fpxz6hl73gdg3sha:b1aa9203

40 min

Placing a system in a risk class and justifying the placement.

  • Difficulty
Start
Advanced

Which role you occupy

Sw2:academic01:obj:p1:3noxszw6sfokl4rpcu2gctdpwwe6jnujnjliz2vq4mst7ouzdc3q:145d41ab

40 min

Provider, deployer, importer, distributor, public authority, joint arrangement: the duties differ sharply between them.

  • Difficulty
Start
Advanced

How you become the provider by accident

Sw2:academic01:obj:p1:mu3wcr7dat2ksze54qkmkombvfb6gmlybu6sw4hx6b5wardyjhfa:61bc67ab

40 min

Fine-tuning, rebranding, substantial modification, or putting a system to a new purpose.

  • Difficulty
Start
Advanced

Deriving the obligations that follow

Sw2:academic01:obj:p1:ge4t676e2vzzo6wqkc566xmc6xrutraaj3nhczp4fpiw57473wla:6e46fb6c

40 min

Turning a classification and a role into a list of things that must exist.

  • Difficulty
Start
Beginner

General-purpose models and the duties that travel with them

Sw2:academic01:obj:p1:6xcwd3vhbislw2louwzlvss6qnvcaap2igqfdxiz42v35ulm7wvq:a3ee66cd

Placing a bought or embedded model inside your own obligations.

  • Difficulty
Start
Beginner

Proving it before it is used

Sw2:academic01:obj:p1:zfbsp66opnmrkuuqbuxl7kukmq2pacm5tyt5rinwpene2jilthuq:c6441702

Conformity work, registration and declarations, and who performs each.

  • Difficulty
Start
Beginner

Standards as the route from obligation to work

Sw2:academic01:obj:p1:drykf4peda246p2gut3bwyik3ii2sh4ratpu2z46rg5yasnvcbfq:5b476fef

How a management standard turns a legal requirement into something a person can actually do.

  • Difficulty
Start
Beginner

When AI becomes part of a regulated product or service

Sw2:academic01:obj:p1:5mvbu4btru75qioy2ysfzlg6p2tj3aypbqxcfv4jh25f5a5qg27q:132c7b2d

Safety regimes and professional duty: the second regulator nobody expected.

  • Difficulty
Start
Advanced

Assessing the effect on rights

Sw2:academic01:obj:p1:mv3llk273tmfqbt2sldcuogtemrnithgbirf52h2ddbzw4q6fvua:ba11086d

40 min

Producing a rights assessment where one is required, and where it is merely wise.

  • Difficulty
Start
Beginner

When the decision is a public act

Sw2:academic01:obj:p1:ve4cw6khtk6wy4necdxu7gmhl6qngoaiz3beexzserxqebjkkv7a:03dc0b31

Duties that attach because of who is deciding: basis for the decision, reasons, and the right to be heard.

  • Difficulty
Start
Beginner

Sector rules on top of AI rules

Sw2:academic01:obj:p1:fxbnvcmxeypg5omxqlksgz6bi7du7otp2o2imehwj5xvsl6v4w5a:dccb3e69

Combining two regimes without dropping either.

  • Difficulty
Start
Beginner

The duty to make your own people competent

Sw2:academic01:obj:p1:2lqwpgujbvmckon4wogscf5phtoaauwwza23ik5u6mxv5cbznotq:f25066a2

Turning an AI literacy obligation into a plan rather than a slide.

  • Difficulty
Start
Beginner

Whose rules follow you

Sw2:academic01:obj:p1:2n6pltcqp5os6m3wao6noe5hhgjqqehznntzawjazndyukav7jpq:a3369ced

Which regimes reach your deployment, your supplier and the people affected.

  • Difficulty
Start
Beginner

Who supervises, and what they can do

Sw2:academic01:obj:p1:kkeguqesg57gmw7ma6a3abhhsqxasilwi4nhb7ophngmdmlg6sra:5d4a6d9e

Powers, inspection, penalties, and what the first letter looks like.

  • Difficulty
Start
Beginner

Phase-in and transition

Sw2:academic01:obj:p1:nwn3qaehxpxyeipz3jkloaxhinqorep2wowcsjbzm66xmehz6suq:80259127

Keeping a compliance calendar and planning against dates rather than being surprised by them.

  • Difficulty
Start
Beginner

Rules that are not law and still bind you

Sw2:academic01:obj:p1:m2tswfdy4xg3yo5wgtebdoq4oi3fbqit5au54np67au2ol6cslya:35610ca9

Codes, guidance, supervisory opinions, funder and insurer conditions.

  • Difficulty
Start
Beginner

When the rules change under a running system

Sw2:academic01:obj:p1:bf6q4o4vtnuyl73ynekn3oqtrynkrwnblazernw6js4bmnfvp57q:fa60be81

Noticing a legal change that hits something already live.

  • Difficulty
Start
Advanced

Recognising the point where it stops being your call

Sw2:academic01:obj:p1:gc6yab3bxqpt7j4y3viaz2hngmex442g4niza7gprywhru4eq3da:a8157d0d

40 min

Drawing the line around your own legal competence.

  • Difficulty
Start
Advanced

Briefing counsel so you get a usable answer

Sw2:academic01:obj:p1:kvo77oyyacjcsgid5why5wl4peyfso7b7xnenuyuuedcwgstei3q:025b5a5f

40 min

Facts, options, and the decision waiting on the answer.

  • Difficulty
Start
Advanced

Map the data in the system

Sw2:academic01:obj:p1:ubjmygvxe63r2vr2237pfstsuk6x5fcp2emrhry6omuimrxv5r5q:72a53059

40 min

Drawing the flow before arguing about any of it: what is personal, what is special category, what is inferred, and who receives it.

  • Difficulty
Start
Advanced

Is there personal data here at all

Sw2:academic01:obj:p1:g5njuiuw357a5ulrd4rvqbkam3zuef24ugz3jdyolxqdytrcgrja:9df57785

40 min

Deciding whether the regime applies, including data that becomes personal once combined.

  • Difficulty
Start
Advanced

Lawful basis for using data this way

Sw2:academic01:obj:p1:fo7ns2ea6m2d6en4a7uttade3p7ed2axwdtfj4ywl663zkgge42a:8f792b9f

40 min

Establishing a basis for this specific use, or concluding there is none.

  • Difficulty
Start
Advanced

Reusing data for training

Sw2:academic01:obj:p1:l255gwfzqna5lrgztabfmchcjwhe2lnlezq4uynecv5ijjisscnq:d68c412f

40 min

Purpose limitation meeting a system that wants everything: whether data collected for one thing may train or evaluate another.

  • Difficulty
Start
Advanced

Anonymisation, pseudonymisation and synthetic data

Sw2:academic01:obj:p1:rrxad5wj6im7uzl6rwlk7zg7t3ne6ny7j3wiyf2uek6dpda5xb4a:b002971e

40 min

Testing whether a privacy claim survives a re-identification attempt.

  • Difficulty
Start
Beginner

Sensitive categories, and the inference of them

Sw2:academic01:obj:p1:y75hvgf5blz6jrolaao6jv4rrvwphiwo67or4zj74soptemh3fjq:4e3a1f1e

The system that learns a proxy for something the organisation never collected.

  • Difficulty
Start
Beginner

The people who did not choose to be in it

Sw2:academic01:obj:p1:fdj56txdefctmm47tcz5lu7cvprpgdsnu2eyazet25fqht4n7fpa:c281fb12

Patients, applicants, employees, beneficiaries, anyone who cannot walk away.

  • Difficulty
Start
Advanced

Minimisation against systems that want everything

Sw2:academic01:obj:p1:aj57c6g5rv5efhrn56jvx5p4ozwkoscg4vjpgena26lksyvq3qba:f1820dbd

40 min

Reconciling a principle that says collect less with a technology that improves with more.

  • Difficulty
Start
Advanced

What you keep, and for how long

Sw2:academic01:obj:p1:ugmdcneye5ab6sf4zp3xb6qiytck4yz7scr4vkgq744ghcsub4gq:c0316587

40 min

Prompts, outputs and logs, and the retention rule that was never applied to them.

  • Difficulty
Start
Advanced

The rights of the people in the data

Sw2:academic01:obj:p1:xt44sfs2ava3a73nnmpaec4w6bhoga54sfztu7kbug36bczhyqca:68d7b912

40 min

Meeting access, correction, deletion and objection requests when the data is inside a model or its index.

  • Difficulty
Start
Advanced

What has to be disclosed, and to whom

Sw2:academic01:obj:p1:a6vsis635yhniqzurdlitimru3a3p7kjjl2vasyjn3h4plm7imba:fd18cbd3

40 min

Deciding what transparency is owed, and to which audiences.

  • Difficulty
Start
Beginner

Telling one person that AI was involved

Sw2:academic01:obj:p1:5jybebucari77iy7abp7o2uyb4chcm7t2viizplfxd5kptxo4eea:e88a75ef

Writing the notice in language somebody actually reads.

  • Difficulty
Start
Advanced

Decisions made about individuals

Sw2:academic01:obj:p1:n45fj4e4lv6sa6lx5evcg2gjlzbbpmresnsd35vlyyb6ltpl72ua:65276edc

40 min

When rights to explanation, human review and contest attach.

  • Difficulty
Start
Advanced

Explaining one decision to the person it was about

Sw2:academic01:obj:p1:cigjx6yhmbpcxeupab3edz6l4ibjlbzyyrkom4zzvetej2qbe2xa:0ba75282

40 min

Producing an explanation the person can act on and contest.

  • Difficulty
Start
Advanced

Where data may go

Sw2:academic01:obj:p1:v6eqsz3o7hje3ul4i5n2auseeq6nangq3ttfi5sdgu3ixgzuehnq:1887e681

40 min

Processors, subprocessors, transfers and remote access, including the transfer that happens through a supplier.

  • Difficulty
Start
Beginner

Staff data, and watching your own people

Sw2:academic01:obj:p1:3zd2ycnmdid2fvmcbcp6d5oubgfqh6szyxokosyf2s3wjwfllpna:c0cad24a

Judging a use whose subject is the workforce.

  • Difficulty
Start
Beginner

Who signs what

Sw2:academic01:obj:p1:we7orf645n5wr27a2j7dabhlsawa77bqy6zv3twrs2cnlug3yiua:cc0dba30

The data protection function and the roles the law names, and how the officer works with them.

  • Difficulty
Start
Advanced

The impact assessment that changes the decision

Sw2:academic01:obj:p1:dtdvkxogczhzollyaq3nwi6zkzbw3a6wgjriyrhzimadyromuevq:d235c09f

40 min

Producing an assessment that is useful rather than decorative.

  • Difficulty
Start
Beginner

Fairness as something measured

Sw2:academic01:obj:p1:xtaqwyuiho4qru6gprx4a5dityspyk4mwdsavzs4miw3bqv3jtmq:880daef2

Groups, metrics and thresholds: what a fairness claim establishes.

  • Difficulty
Start
Beginner

You cannot have every kind of fairness at once

Sw2:academic01:obj:p1:5td73vzp44xi54mfjfrnzm6jt6btyc7h7okmlgzby7hgo74zsd6q:8b7109cc

Definitions that conflict mathematically, and choosing one as a policy decision.

  • Difficulty
Start
Beginner

Hearing from the people affected before deciding

Sw2:academic01:obj:p1:asdr6ok3a5p6hrpp27vfpm6nnwcbqulb2g7tdqh2a23mm233n6da:684a228d

Consultation designed so that it can still change the design.

  • Difficulty
Start
Advanced

Contestability and redress

Sw2:academic01:obj:p1:c65m5tyqfaizmqodl32mnrg7wfoqjzqrsxe375ad3u4flg757rwa:5e2bb1ef

40 min

Building a route by which a decision can be challenged and overturned.

  • Difficulty
Start
Advanced

Lawful and still wrong

Sw2:academic01:obj:p1:qwu7uznwseb6qfg7lb7zkss3smqfewe6nkylwremlg6hoxptd2aq:c56b5c03

40 min

The judgement that remains once every legal test is satisfied.

  • Difficulty
Start
Beginner

The cost of not using it

Sw2:academic01:obj:p1:bzuh4jhekvmpjsjep3b3waen4ektjsrv3btmt7ef3fuj64o2w24q:d34e839e

The system refused that would have helped somebody.

  • Difficulty
Start
Beginner

The ethics further up the chain

Sw2:academic01:obj:p1:g7eo7qwaljb4aqbc6xunpd64wuqyqqq5cag5dubn34hizqnvym5a:b432d3c9

Data workers, source material and environmental cost: answering for how the thing you bought was made.

  • Difficulty
Start
Beginner

Turning a no into a yes

Sw2:academic01:obj:p1:oy77bcrxcmh6cyz32wgb3hfmcbe2ibahm5wa5qzusvm7ddutjnna:d65d6e43

Changing data, design, oversight, scope or purpose until an unacceptable use becomes defensible, or concluding that it cannot.

  • Difficulty
Start
Advanced

Where harm becomes liability

Sw2:academic01:obj:p1:qgvelm36b2yijsb4rmybweehc5welvigpkgap5peqp4tpfbodcwq:3d738360

40 min

Who may claim, against whom, and on what theory when an AI system causes harm.

  • Difficulty
Start
Advanced

Your own exposure as the officer who signed

Sw2:academic01:obj:p1:4qlxyp7wp4ow7ezv6jocx7tbfusocq5vommmcweblbnsdbdjvtxa:ab18e5dc

40 min

What attaches to the individual, and what protects them.

  • Difficulty
Start
Advanced

What a standard supplier contract does not give you

Sw2:academic01:obj:p1:ek4mvxouqswlhxgkkyul43xocfeqgc65xh5fxf5v3lslxym3b4za:eb57cf2a

40 min

The gaps in a supplier's own paper, found before signing.

  • Difficulty
Start
Advanced

Warranties, indemnities and caps

Sw2:academic01:obj:p1:6md2z5ar5gzxuwv2bp3kspidwk6qxpb7qud436bzvzczupna3rsa:dc50099d

40 min

Whether the protection offered has practical value.

  • Difficulty
Start
Advanced

Audit, access and evidence rights

Sw2:academic01:obj:p1:2vacxpscvdog6vqz575xzpuezt2xz2xengk6kq33dmugs7iatdga:22aab2ac

40 min

Securing in the contract what governance will be asked for later.

  • Difficulty
Start
Beginner

Subprocessors, and the supplier's suppliers

Sw2:academic01:obj:p1:to2x2vxufrgzzjy452j3jptlmbpmo42e2bqnasgub235m73gjhgq:44455df2

Controlling a chain you never signed with.

  • Difficulty
Start
Beginner

Service levels for something probabilistic

Sw2:academic01:obj:p1:o6wuf2xsmafcrbgyl2kxpxqstorkaktbfldk72jeeo6ieuspmxea:e55850f5

Writing commitments that mean something where correctness cannot be promised.

  • Difficulty
Start
Beginner

When the counterparty is somewhere else

Sw2:academic01:obj:p1:k5m3evz6j5hdw6szdlh7b442xtbzcsowqxhsultjml4zos4s2hya:e2f3b05f

Governing law, forum, and whether a remedy could actually be enforced.

  • Difficulty
Start
Beginner

Insurance and what is left with you

Sw2:academic01:obj:p1:xwoyvrexw2ky2itvl6t6jqt2qikokiukmwidxf65bhofbmxktsoa:beaf6cd2

Finding out what the cover excludes before the claim rather than after.

  • Difficulty
Start
Advanced

Rights in what goes in

Sw2:academic01:obj:p1:pixrjlesgtpmhsjl4v6veqo7jsfulo3gfg5nvpr64qke2q6iymcq:11414895

40 min

Whether the organisation may use the data, documents, images, code and third-party content it intends to feed a system.

  • Difficulty
Start
Advanced

What the supplier trained on, and what that does to you

Sw2:academic01:obj:p1:rjpgmlfikaivuvb5izl5uhhacsphvdccimkz6mu74nkv6fjmuecq:620fc41a

40 min

The exposure inherited with somebody else's model.

  • Difficulty
Start
Advanced

Status of what comes out

Sw2:academic01:obj:p1:ktyg52bbtebe7vv6bgmr6q4qs6pq3ayuhrksdztalvjchggxzlla:45e61d45

40 min

What the organisation owns, may publish, and can rely on.

  • Difficulty
Start
Beginner

Licence conditions that travel into deployment

Sw2:academic01:obj:p1:rjz3p6nqlepnjkyteiqhwxk5b5xfsnyhgc5rh2xioizck7b4a4vq:baea6a65

Tracing an open-weight or content licence through to what the live system may do.

  • Difficulty
Start
Advanced

Output that collides with someone else's rights

Sw2:academic01:obj:p1:no52cfgmwpvy2gq6ojv7epojukgyqubnslraohlzooj3jtlnkuwq:6bc74033

40 min

Resemblance, marks, and statements about real people.

  • Difficulty
Start
Beginner

What leaves the building

Sw2:academic01:obj:p1:6yrdyidob3r6vrgujmz3rbqpzxqaickipyd35qlzmcakyebdsnza:cf3f306d

Confidentiality and trade secrets in the everyday use of outside services.

  • Difficulty
Start
Beginner

What you say about your own AI

Sw2:academic01:obj:p1:q35tokd7ni23wedwk2mswbtoii5soe4anetdtqjsjnoyrb4pfbpa:fdb779f5

Claims in tenders, funding applications, marketing and public statements.

  • Difficulty
Start
Beginner

Discrimination and equality exposure

Sw2:academic01:obj:p1:fgfkpabchkd4k4oygskmvwk2dp6yakszzz43copfr2rykkxautna:181054ee

The claim that arrives from equality law rather than from data protection.

  • Difficulty
Start
Beginner

Employment consequences and consultation

Sw2:academic01:obj:p1:4zxws5ylzxlaibt5mlm6rpsca225tkp5tymfz46oovtag3yg5vbq:8b8006b0

Meeting workforce obligations properly rather than formally.

  • Difficulty
Start
Beginner

When several organisations share one system

Sw2:academic01:obj:p1:rbuwyzubscqoebkxwi5f5dwpuvhpb7p2vpawztr5nfbi245345mq:e65a8e04

Allocating responsibility across consortia, shared services and local deployers.

  • Difficulty
Start
Beginner

Procurement law as a constraint on contracting

Sw2:academic01:obj:p1:k6y37irnatwhk6zkacz5vzeknqulpo4zwu3aoj6iqvger2w3epqq:fe88d6aa

Transparency, equal treatment and specification rules that start before the negotiation.

  • Difficulty
Start
Advanced

Documentation as defence

Sw2:academic01:obj:p1:ny72lxlrupetcfoc3nxzo5me2bgrgby6le4x5gdivpmu2474ou7q:56c71e56

40 min

Recording decisions, assumptions, tests, warnings and accepted risk so that a question in two years has an answer.

  • Difficulty
Start
Beginner

Keeping what you would otherwise delete

Sw2:academic01:obj:p1:niesvlunxsrxifamhjegysaptdu52js5ibi66nqs6pkulqgffb5q:bfbe33bb

Suspending deletion once a dispute becomes foreseeable.

  • Difficulty
Start
Beginner

When it reaches a regulator, a court or an inquiry

Sw2:academic01:obj:p1:byzlbukvrrlgtfwuu7yehgyy4tdbdymmc6h2r4acng7oj4zh4qja:35b1b2bd

What will be requested, and who has to produce it.

  • Difficulty
Start
Beginner

Ending it badly

Sw2:academic01:obj:p1:47i3obcajzwcdeniypiacwfkxyuflim27xeirwmhrdrkoxxg6k3q:1c2efb36

Termination, transition assistance and getting your data back.

  • Difficulty
Start
Beginner

Designing a Mixed-Methods Study

Sw2:academic01:obj:p1:gddzkbc56istqvlkvm474fm7bjtyx54ofsdhl3v6x7eme6k44vcq:3493034a

1 h

plan a sequential or concurrent mixed-methods design and justify the integration point.

  • Difficulty
Start
Beginner

Maximum Likelihood Behind Model Training

Sw2:academic01:obj:p1:35su2vpurll3gntgeaqjgx75e3oyukixugobhx6ehnqob55fdelq:61f7243b

1 h

see model training as likelihood maximisation.

  • Difficulty
Start
Beginner

BAIT and AI in Banking IT

Sw2:academic01:obj:p1:6zejs6bi25fbebf7zqo5bctyvv5rbmyct2kdw764nll2qtprb7aq:23b04f9d

1 h

apply the German BAIT expectations to an AI-supported risk process.

  • Difficulty
Start
Advanced

Reliability of a Test

Sw2:academic01:obj:p1:x64mmkuxqhxivkeftjrlhlcta4itjyofzooy2op6rcqcaht2eawq:829a3459

1 h

Reliability estimates how consistent a set of scores is across items or occasions, using coefficients such as coefficient alpha, and it bounds how much a score can be trusted.

  • Difficulty
Start
Beginner

Keeping a Digital Presence Consistent

Sw2:academic01:obj:p1:tjnhvkzqqscqvauhbjyd6butx7co6hryso3spngg2ej35dchelya:4004948f

1 h

How to hold profiles, bios, and visual identity coherent across every platform, so the organisation reads as one voice.

  • Difficulty
Start
Expert

Financial Instruments Classification Under IFRS 9

Sw2:academic01:obj:p1:zayozwp6dmnp7ahfckp5rxl34riqjvouj5qsl3y4nvmhhlpbxjfa:35a39caa

1 h

IFRS 9 sorts financial assets by business model and cash-flow characteristics. Classifying and measuring instruments correctly is one of the most intricate judgments in reporting.

  • Difficulty
Start
Beginner

An Agent for Meeting Scheduling and Follow-Through

Sw2:academic01:obj:p1:ewej5yyzhtowly27bcokvjfw2bgw7xdqka3u4fb4t3xkbphpgiaq:a9dc1aed

1 h

deploy an agent for scheduling and follow-up with clear guardrails.

  • Difficulty
Start
Intermediate

What Only a Person Can Judge in Diligence

Sw2:academic01:obj:p1:j4ebbzaoat4lhs7tjatfqsqe5gptqdxmebqa737venhmjvyejrsq:fde37db0

1 h

Some diligence calls turn on judgement a reviewer must personally own rather than delegate to a tool, and recognising which ones keeps accountability where it belongs.

  • Difficulty
Start
Beginner

The Banned Practices Overview

Sw2:academic01:obj:p1:gqjknbqbygtvsaa7whotjcawwr3mmadtgmf2mgcqqqbvn5boyqua:098b3d3e

1 h

A short list of AI uses the EU AI Act forbids outright, regardless of safeguards. These prohibitions mark the hard edge of what the law will not permit.

  • Difficulty
Start
Beginner

Value-at-Risk Explained

Sw2:academic01:obj:p1:gs3edvopo53hriwm5ctvzoykg3peber4qgl2jqnatesiahcaoyba:618ccb75

1 h

define VaR and state precisely what it does and does not measure.

  • Difficulty
Start
Beginner

The Cost of AI Inference in the Cloud

Sw2:academic01:obj:p1:f53fbfsveztze3judkdovfi5hvutv4fyus3nonew4eczpltmi36q:2becd1ff

1 h

estimate and control what serving a model in the cloud costs.

  • Difficulty
Start
Beginner

How AI Changes the Legal Market

Sw2:academic01:obj:p1:rw2fnaaylbtzfuohrobxzhyvcg5dh2byjcvk5kprgoodwykmrxjq:d1af2e54

1 h

describe the forces reshaping legal services and where AI displaces, augments, or leaves legal work untouched.

  • Difficulty
Start
Beginner

Limits of Multimodal Input

Sw2:academic01:obj:p1:eubzcwh6yiuvlcmdjwf4sly223r5dgsjtthsfz6qfi5bp64ytwba:61765ef2

1 h

recognise what a model tends to misread in images and audio.

  • Difficulty
Start
Beginner

Migrating an AI Workload to the Cloud

Sw2:academic01:obj:p1:io2s56a7gibsfx4qjb2gfz4nexl43n5r3qxbdjvjpq7dclhw7z6q:f3510a38

1 h

move a training or inference workload to managed cloud infrastructure.

  • Difficulty
Start
Beginner

Robust Summary Statistics

Sw2:academic01:obj:p1:hbvxukrtbghsymccicob2ek2hphk5qlrcz4tmjxmjcio4sjompwq:cb50dcb9

1 h

summarise data with statistics that resist outliers.

  • Difficulty
Start
Beginner

Serialising a Story Across Posts

Sw2:academic01:obj:p1:c3uioriuvsa6de7t2xrl3escrpshk6eshkgwebtbliymbcynevva:328f9b28

1 h

A multi-part story planned across posts pulls followers from one instalment to the next, building anticipation the way a series does.

  • Difficulty
Start
Advanced

Aligning Competences to Qualification Frameworks

Sw2:academic01:obj:p1:ehht2j6qkzorqrsbum4ios3tr7qgxjlofzd2nokth7rulr34t6ha:50a79e33

1 h

Mapping a competence model onto framework levels such as EQF places locally defined competences into a shared ladder others recognise.

  • Difficulty
Start
Advanced

Choosing a Method for the Situation

Sw2:academic01:obj:p1:sy3vrze45vq4dudbnbblrreoan5ap7ttesramrnfzpxd5sqcw62a:0a57cdcc

1 h

How to select a primary and a corroborating valuation method for a given mandate. The method mix must fit the asset, the data, and the purpose.

  • Difficulty
Start
Intermediate

Segmenting a New Market

Sw2:academic01:obj:p1:6gzg2skbw52eiuyxq2witn3tcsci3zu76fy4cmswf6rb4cpmipwq:112a2084

1 h

Segmentation splits a market by differences that matter for need, value, and how easily each group is reached. Good cuts make targeting possible.

  • Difficulty
Start
Beginner

Designing a Sales Experiment

Sw2:academic01:obj:p1:2ko5333ey4oalmvndzkahiigxyhjzsi3nrwdgudsec5qwbyvebaa:6c6c9c19

1 h

set up a clean test (for example an A/B on outreach) to learn what works.

  • Difficulty
Start
Intermediate

The Seven Elements of a CMS

Sw2:academic01:obj:p1:3uiumlp7gyejkmv6op2hbdqll4oi67pejwppc6nej4hmw4hesdmq:61f65b52

1 h

The seven building blocks of a compliance management system as defined by the IDW PS 980 standard, and the points where AI can support each. This framework anchors how German auditors assess compliance.

  • Difficulty
Start
Intermediate

The Problem-Solution-Traction Arc

Sw2:academic01:obj:p1:btem3szozunbayeflzxz7yi5e7lxjh7obfzycpdwokhmxil5rtiq:29bdc711

1 h

Many strong pitches follow the same arc: a sharp problem, a fitting solution, and proof it is working. The arc gives investors a familiar path.

  • Difficulty
Start
Intermediate

Working Capital and Cash Conversion

Sw2:academic01:obj:p1:damienrd73oastxz2rxy2lencmdupk6a2nxtkes5wfejjc7dxvoq:1ed600a5

1 h

Deriving and interpreting the receivables, inventory, and payables cycle that ties up or releases cash as a business operates. The cash conversion cycle shows how efficiently trading turns into cash.

  • Difficulty
Start
Beginner

What Microservices Are

Sw2:academic01:obj:p1:mgssmsmnoxexq4s2qckp2shbh7ikspi53rk5zgi4hmkx5err5afq:19aae5cb

1 h

describe microservice architecture and how it differs from a monolith and from classic SOA.

  • Difficulty
Start
Intermediate

Consistent Tone and Brand Voice

Sw2:academic01:obj:p1:daj5hbbafdpumdxt7bhvziwai5tr2qhjzpw2zcz3zs5dcmqyyc4a:b97e9b1c

1 h

Keeping replies aligned to a defined service voice across many interactions. Consistency is what makes a brand feel like one coherent presence.

  • Difficulty
Start
Advanced

Distinguishing Error from Fraud

Sw2:academic01:obj:p1:s3grwai4p5thlhnq7hzvqxao67gh565yes77lkixzsirf65bxf3a:4342e70a

1 h

How to judge whether an anomaly is an honest mistake or a deliberate misstatement, a call with very different consequences.

  • Difficulty
Start
Beginner

Managing Stakeholders in a Consortium

Sw2:academic01:obj:p1:uvcvk24b5gpaqcw3y47mx4nhzfdw7f75zuiuecrlmifgyc7kp5gq:cea27b39

1 h

keep partners, advisory boards, and the funder aligned.

  • Difficulty
Start
Advanced

AI in Internal Investigations

Sw2:academic01:obj:p1:fu7jadh4tolm77ww3upmuy5gzxpyse6gpugm2wrcnsjzragrojea:07f03e95

1 h

AI can assist internal investigations, but only within the limits set by employee rights.

  • Difficulty
Start
Advanced

Deciding to Scale or Stop an AI Pilot

Sw2:academic01:obj:p1:3ou2edk2wogn23cpgbsywulco64gwhsbwsste7adaihtzysscqpq:44f2585e

1 h

How to use financial evidence to decide whether a pilot earns a wider rollout or should be stopped. Sunk cost and enthusiasm both push toward the wrong call.

  • Difficulty
Start
Beginner

Communicating with Regulators About Models

Sw2:academic01:obj:p1:wd7tefah2wv6smtudq4zkwdprt4lyknx7qzhsbl4zjkjnlr4tfnq:1599e3e9

1 h

prepare and hold a supervisory conversation about a model or AI system.

  • Difficulty
Start
Beginner

Reproducibility in Analysis Pipelines

Sw2:academic01:obj:p1:bewi7ugvgx6zb3vnqpo43qju773cq46v2ljr5p3spgyof5m2loeq:419976e9

1 h

build an analysis that another person can rerun and reproduce.

  • Difficulty
Start
Beginner

Explaining a Statistical Model in Plain Language

Sw2:academic01:obj:p1:v7p67ovjxchv3mulrxthzksslx4zofurbo6ha3dixhyqawmasnia:4727b554

1 h

make a model's logic understandable to a non-specialist.

  • Difficulty
Start
Intermediate

Choosing a First-Release Scope

Sw2:academic01:obj:p1:iugs3tv6lttydal64cdl7auvcrkb3fb5kemmh6ogrr3nlzvnhnha:fd64696c

1 h

The first release must be narrow enough to ship yet good enough to judge. Scoping is a discipline of saying no without cutting quality.

  • Difficulty
Start
Advanced

Reconciling the Journal to the Financial Statements

Sw2:academic01:obj:p1:dzcsocxisg2uljvi33egescp6kts2x7tqsmxfwje66ki6ogvscrq:810c44d4

1 h

Proving that the tested journal reconciles completely to the reported financial-statement figures.

  • Difficulty
Start
Intermediate

Subscription and Recurring Revenue

Sw2:academic01:obj:p1:qkegog2cv5ofjsnc56av5grhqgdkx6urll4wd6cwuqko332zf24a:3ac7d035

1 h

Recurring revenue trades a one-off sale for an ongoing relationship measured by retention and lifetime value. The model lives or dies on churn.

  • Difficulty
Start
Beginner

Measuring Process Risk

Sw2:academic01:obj:p1:abx7xqe74yqfhmk4obaymqigz4llvczhif6pwgs6naecbejzii2q:7a649f9e

1 h

quantify process risk so it can be prioritised.

  • Difficulty
Start
Intermediate

Cooperating with Authorities

Sw2:academic01:obj:p1:rf2muxhaq6ykjiokd2cc4bdw2pzxnq4iogsxjiufwfjhek5ky6rq:34836d14

1 h

When a system malfunctions or causes serious harm, deployers must report the incident and cooperate with the supervising authorities.

  • Difficulty
Start
Advanced

Interpreting Item Difficulty

Sw2:academic01:obj:p1:hfpw5boarn774532btspl5ccjbqspbfc75rwb4env3jcolakeqna:86ae1c82

1 h

An item's difficulty parameter locates it on the same ability scale as the learners, showing the ability level at which a learner has an even chance of answering correctly.

  • Difficulty
Start
Advanced

Routing Between Models

Sw2:academic01:obj:p1:dpraxapkfr6ntqvn2gmf5lpqdvkdef6lxwis7qhgtz3znfmv5dfa:8a09991e

1 h

Sending easy requests to cheap models and hard ones to stronger models automatically. Routing balances quality against cost across a mix of traffic.

  • Difficulty
Start
Advanced

Self-Attention

Sw2:academic01:obj:p1:omreicjdej6zivulywj4borujwhpabs6ognjxzlvjtldchluygca:b03ead42

1 h

Self-attention applies the attention mechanism within a single sequence so every token can relate to every other token in it.

  • Difficulty
Start
Beginner

Seasonal and Promotional Campaign Content

Sw2:academic01:obj:p1:zavz4nokohmyorjxnavyitgpnaafrapnntzzce26uk67wqtc3v3a:a459c1f2

1 h

Planning content around seasons, sales, and events so campaigns land on time.

  • Difficulty
Start
Intermediate

Designing Compliance Training

Sw2:academic01:obj:p1:jvnkctz3ruo42rcd2lc7zlcdqnvvsnspn4od3tezim27bthbawpa:2595570e

1 h

Building compliance training content matched to each role and its risk exposure, using AI to draft and adapt the material.

  • Difficulty
Start
Beginner

Contingency-Based Sales Enablement

Sw2:academic01:obj:p1:3x66myspnsfeqrwukag5aibzjqpz7oaibfjac7sciij7xpqejd6q:5736873e

1 h

match enablement content and plays to the specific deal situation rather than a one-size playbook, using AI to select.

  • Difficulty
Start
Intermediate

ISO 37301 Compliance Management Systems

Sw2:academic01:obj:p1:dnszhzuhrabxueojockoiybv47jf47et5fv4ggbvmih27wcvtpia:4000e5d7

1 h

ISO 37301 describes a compliance-management system for meeting legal and regulatory obligations. AI obligations can be placed inside this wider compliance structure.

  • Difficulty
Start
Intermediate

Modelling Agent Roles and Responsibilities

Sw2:academic01:obj:p1:ws4kbos56aalnlrxrwoqczvmp7nalqdra7mhbq345xavpatp2tfq:b74bc683

1 h

Each agent needs a clear mandate, inputs, outputs, and limits so responsibilities do not overlap. Clean role boundaries prevent chaotic behaviour.

  • Difficulty
Start
Advanced

The Jahresabschlusspruefung Engagement

Sw2:academic01:obj:p1:rdoswkbzrp7ohgnjzije3sbebx6hzvntqoju5osxifgl4vql2kja:5d50f51b

1 h

The objective, scope, and phases of a statutory HGB financial-statement audit, and where AI assistance fits into each phase.

  • Difficulty
Start
Advanced

Sprecherausschuss and Leitende Angestellte

Sw2:academic01:obj:p1:bu53nameeq4iriwtpz2y5akkm6ogait3sgapbuuatupjhejpxa3a:94fcbf63

1 h

Handling co-determination for executive staff, who sit outside the works council under a separate representative body. Their representation follows different rules.

  • Difficulty
Start
Advanced

System Identification with Machine Learning

Sw2:academic01:obj:p1:vwfsgc3yxiyalq32fjl55nwtbocm7xsrpk5odumg2cbzs6sauxdq:a3324341

1 h

System identification builds a mathematical plant model from operating data, and machine-learning methods extend it. It matters because most control and simulation work needs a faithful model first.

  • Difficulty
Start
Intermediate

The Data Room Behind the Deck

Sw2:academic01:obj:p1:nymvu4jlwlgaeuiumw6ghuchkbewfe32qxgdhwnzp2isovvggzmq:d107cd75

1 h

Preparing the supporting materials investors will request once the pitch lands, organised so diligence runs smoothly.

  • Difficulty
Start
Advanced

Protecting IP Before Disclosure

Sw2:academic01:obj:p1:xh47biupwoydmqg5dnqvwg7vjtnn25vimg5h35t7robfa663u7ja:96389ac1

1 h

Safeguarding intellectual property before pitching or publishing, since premature disclosure can destroy patent rights and bargaining power.

  • Difficulty
Start
Beginner

Running a Model Risk Transformation Programme

Sw2:academic01:obj:p1:4zgpp34rrzcxt74inge6uniphkrr46tpcn2626cq3hwy7dq6yzzq:4a27cec4

1 h

Lead the change that turns scattered model practice into a governed model-risk function.

  • Difficulty
Start
Beginner

Liability for an AI-Assisted Deed Error

Sw2:academic01:obj:p1:2htsnnleozhl35j4bgtlttwffjw3uffhbcicqmko76c5lnio6nxa:b2dc7901

1 h

reason about who bears responsibility when an assistant introduces an error into an authenticated instrument.

  • Difficulty
Start
Beginner

Making a Budget Understandable to Citizens

Sw2:academic01:obj:p1:apttihywegqbsglm4w3domrh4ddwdpdbbhf6vrlg3ygi577ec3ma:bab3882c

1 h

turn a technical budget into a citizen-facing budget explainer.

  • Difficulty
Start
Beginner

Bankenregulierung as a System Requirement

Sw2:academic01:obj:p1:u77rj4iajwoxpytpbmrq42ngw6vtx2sexdvmqghrnoiwpsrlqw3a:f8dc08b5

1 h

read supervisory law as a set of requirements a system must satisfy by construction.

  • Difficulty
Start
Advanced

Infringement Risk in AI Output

Sw2:academic01:obj:p1:fexoev2chb5gd4ppvxqhdxmejdodajefkue4e5bch2fez5nh6hxa:1541fb91

1 h

A model can reproduce protected material in what it generates; judging that risk means weighing both how the model works and what the law protects.

  • Difficulty
Start
Advanced

Differential Item Functioning

Sw2:academic01:obj:p1:6hk2jkgds5jwlkewn5zi3zgk6i2qrt2zm6teufkj3xaknaaxyhla:109ace78

1 h

Differential item functioning occurs when an item is harder for one group than another among learners of equal ability, a statistical signal of possible bias.

  • Difficulty
Start
Intermediate

Multi-Year Trend Reading

Sw2:academic01:obj:p1:chlzho2vhtplknnoizxkqxrsjkplmv22flsgyahynkoc3ip4wwuq:bce37b93

1 h

Reading several years of financial data together to spot patterns, momentum, and turning points that a single period hides. Trends often tell more than any one year's numbers.

  • Difficulty
Start
Beginner

Checking Numbers and Calculations

Sw2:academic01:obj:p1:3igua6mpdqfzbcofzauvu6ia4lucltw2fzyfky36qkxyawy7zwia:02b54c07

1 h

re-check figures and arithmetic a model produces.

  • Difficulty
Start
Beginner

Witnessing and Gossip for Logs

Sw2:academic01:obj:p1:kid4nsgstzvaqnhwa4jzv6y244pik4cxpj6dfra4poa4bmmc5uvq:31371f80

1 h

use independent witnesses to catch a forked or rewritten log.

  • Difficulty
Start
Intermediate

Who Owns a Generated Asset

Sw2:academic01:obj:p1:nf2yqgmb6tdlxt7jd23omk5cdrsrqdubhoszxpjb5sqaedjou4fa:088612b4

1 h

Ownership of AI-generated work is unsettled and depends on tool terms and jurisdiction. Reasoning through who holds the rights protects against costly assumptions.

  • Difficulty
Start
Beginner

Berufsrecht and Independence for Tax Advisers Using AI

Sw2:academic01:obj:p1:rdrwrv4k5kxdirlxd5cinqoljtnsrtz5lulokoj7y2hm453a5jqq:b04fa1f4

1 h

stay within professional rules when AI enters the tax practice.

  • Difficulty
Start
Advanced

Confidentiality in AI-Assisted Intake

Sw2:academic01:obj:p1:qbyqq2zo544ltovszfvomfktc7jqo7no42w7lfnyngfzwrikcqfa:ea451b60

1 h

Protecting reporter confidentiality when AI processes an incoming report. A confidentiality breach here can expose a reporter and the firm.

  • Difficulty
Start
Beginner

The Validation Report

Sw2:academic01:obj:p1:crzyvxaezpfuf5w2alkdte6pkcfsa2sp2hamkxzcnwtwjefzmq3q:ca1a0546

1 h

write a validation report that states findings, limitations, conditions, and an approval recommendation.

  • Difficulty
Start
Advanced

Investment and Subscription Agreements

Sw2:academic01:obj:p1:y4jv5ugejtxyfyqp4p3yvqlb6iuygy4c3ws7ofr6jgk2wqaopqeq:d7571aaf

1 h

A financing round closes through investment and subscription agreements that set terms and commit capital. Structuring them ties the economics to the paperwork.

  • Difficulty
Start
Beginner

Aligning a Draft with Higher Law

Sw2:academic01:obj:p1:4jc53uk4qamqomozbqujyi3btcahlt7xbtltq72zq5mur55njmkq:f8b83bc8

1 h

check a finance provision against constitutional and framework budget rules.

  • Difficulty
Start
Intermediate

Mapping Items to Skills

Sw2:academic01:obj:p1:iabz6lde6ydyik67ugshyzksn7am2kdqdywvsjaycrpxir4etvla:ffb10d9b

1 h

Linking each item to the skills it provides evidence for lets scattered results roll up into skill-level claims and shows where the bank has thin coverage.

  • Difficulty
Start
Beginner

Build, Buy, or Configure

Sw2:academic01:obj:p1:fhhja6wnqxht5r4dsxafdr6m4xiwp7i5ygey4kogmlipxlelwtca:74ca9694

1 h

choose between building, buying, and configuring a system for a given need.

  • Difficulty
Start
Intermediate

The AI System Lifecycle in 42001

Sw2:academic01:obj:p1:54obadzo4gh23salqhf6mrwrexcvrnw4i2o42za7otpe3zeeq6ia:fdd2e791

1 h

The standard sets expectations across an AI system’s whole lifecycle, from design and data through deployment and retirement. Mapping duties to stages keeps governance continuous.

  • Difficulty
Start
Beginner

Where Bias Enters

Sw2:academic01:obj:p1:fmfmcucq7cgcpfpd4dmha6lajvcen7loezc6tyql2clu77icfypa:b673ffc2

1 h

Bias in the data a model learns from can surface in its output, reproducing skew present in the source material. Understanding the path from data to output is the first step to managing it.

  • Difficulty
Start
Beginner

Bundeshaushaltsrecht in Outline

Sw2:academic01:obj:p1:qisail6mqny6cik423uswv7ipbkoyt3jzernumiy2mntnby33f3a:fd8efc92

1 h

explain the legal framework governing how the state may budget and spend.

  • Difficulty
Start
Beginner

AI-Assisted Customer Segmentation

Sw2:academic01:obj:p1:e6yvagx4hzsn4eqsxkzegwh3cpt2fm46uohmwkuyds7b7szxmcbq:d8ef14b6

1 h

cluster a customer base with AI and interpret the segments for action.

  • Difficulty
Start
Beginner

Win/Loss Analysis with AI

Sw2:academic01:obj:p1:xr5xoxewme4c657mbiv77luy762eobcv55klb562qhpf2c2bcsda:9ba2f59b

1 h

extract patterns from won and lost deals and separate signal from story.

  • Difficulty
Start
Advanced

Why Dismissal Cannot Rest on an Algorithm

Sw2:academic01:obj:p1:nmdjsz3ei5smxhuqzxaympc6thj2q4edyd4nc4rzvrfahq4oqopq:7e60f4ae

1 h

A dismissal cannot rest solely on an algorithmic recommendation, because the law requires a human, individualised decision.

  • Difficulty
Start
Beginner

Case-Based Hospital Revenue

Sw2:academic01:obj:p1:ff66fjbw45sqktncteo5ksysjizmszubxmavm63ucecptt3yuuwq:ff5aef18

1 h

understand DRG-based case revenue logic.

  • Difficulty
Start
Beginner

Recognising a Degraded Session

Sw2:academic01:obj:p1:rmx5piwzhq67p56bnvj2q3lutxknzkloosyvx5ysvkra4zon5ura:e84022cf

1 h

spot when a long conversation has lost the thread.

  • Difficulty
Start
Beginner

Umsatzsteuer in the Non-Profit Sphere

Sw2:academic01:obj:p1:4atsfuiamhrncrxlnnh2lj5qobgneejhhbto7zqtofz6k3vev44q:5aa75055

1 h

treat mixed taxable, exempt, and non-economic activity correctly.

  • Difficulty
Start
Beginner

Drafting Standard Legal Correspondence

Sw2:academic01:obj:p1:oflftsdvpk7iy47f53raagrj2g66jkvuzvnmwmj2ne3noe3om4nq:3ce60de2

1 h

produce routine legal letters and notices grounded in matter facts.

  • Difficulty
Start
Beginner

Recognising an Illegal Financial Advertisement

Sw2:academic01:obj:p1:lmehfdsoisgbxsunjzsjl6uqmwrpqs2dphdmtcvjfh7ji37p532q:e2bc4207

1 h

Recognise the patterns supervisors act on in financial advertising.

  • Difficulty
Start
Beginner

How Models Read Text as Tokens

Sw2:academic01:obj:p1:2jpdbjkr7goog464t3nav7tcwvv7ch3zs4oganjjt2afw3q4yuaa:ad047d79

1 h

Models do not see words or letters but tokens, the chunks text is split into. Tokens shape cost, context limits, and model behaviour.

  • Difficulty
Start
Advanced

Topology Optimisation with AI

Sw2:academic01:obj:p1:uzeel2226wiqhijd6btoszb4eoddm2tsnir2irr4bf2zcyivednq:66144222

1 h

A topology-optimisation result from AI has to be interpreted and checked for whether it can actually be manufactured.

  • Difficulty
Start
Intermediate

Reading an Enterprise AI Reference Architecture

Sw2:academic01:obj:p1:hreijc2bjyleavsspwzwhymk3zpqbroxnpy6e5wlqi56ecuogyoq:fc57a9a4

1 h

A reference architecture diagram shows where models, data, controls, and users connect. Reading one is the first architectural literacy skill.

  • Difficulty
Start
Advanced

Integrating Finance and Reporting

Sw2:academic01:obj:p1:rilvd5mhryc7kvondy2hdxnl3nlltb7r4uur5iz2ojqesebv6pnq:511aabdf

1 h

After completion, finance functions, reporting, and controls must be consolidated so the combined group can close its books reliably.

  • Difficulty
Start
Advanced

Structuring Capital and Voting Control

Sw2:academic01:obj:p1:vd3jznykbydy2rqpbnt3zedvkcmovrw47sflfnubjoukfloolpxa:2fd3bec7

1 h

Designing capital and share classes so economic ownership and voting control line up with the founders' intent.

  • Difficulty
Start
Beginner

Validating an ECL Model

Sw2:academic01:obj:p1:try2aaamc4exhv26ngxlvhozkquanjle3m7tn5d5c27tjg7ovjxa:3040220c

1 h

validate an expected-credit-loss model against IFRS 9 requirements.

  • Difficulty
Start
Intermediate

Defending a Valuation in Conversation

Sw2:academic01:obj:p1:ub6vpqqdvjxwektnbmjzajmg3du4zfhm24uyjxciepkugges5aeq:f647e416

1 h

How to stand behind a company valuation when investors push back on the assumptions, and keep the number credible under challenge.

  • Difficulty
Start
Intermediate

Revenue Model Choices

Sw2:academic01:obj:p1:7dpqiwer2nj5xnszmqhvnglt2nf6vebrv5wzdqa6wyrjoeeyd7nq:d5d1ffa2

1 h

Ventures can earn through sales, subscriptions, licensing, take rates, and more, each with different dynamics. Choosing well means matching the model to the value delivered.

  • Difficulty
Start
Intermediate

Auditing a Feed for Visual Drift

Sw2:academic01:obj:p1:ouv74ptaeb3lzlr2qwx54fc44ct7pnjq4rrsghvid37rxol6k4da:9dd1be4d

1 h

Spotting where recent posts fell away from a defined visual system and need correction.

  • Difficulty
Start
Intermediate

Partner and Supplier Model

Sw2:academic01:obj:p1:nqprqyrje7gcmwo4nb374zhd75axzhntsezlx233cr4rscinizfq:89c9c5e4

1 h

Few ventures build everything alone; partners and suppliers fill the gaps. Mapping them clarifies what to own and what to source.

  • Difficulty
Start
Beginner

Ontologies and Taxonomies

Sw2:academic01:obj:p1:esnluwe35zu6oniuih7rka447ufqjzll4kbowlguw7db5d4f4hbq:763c71f7

1 h

organise knowledge with shared vocabularies and hierarchies.

  • Difficulty
Start
Advanced

The Verification Duty for AI-Assisted Evidence

Sw2:academic01:obj:p1:zeikjoww7zepvftj4avt5qtwyfgqfof4w5v5u2kl3iyo3uviubiq:e9e31394

1 h

Treating an AI output as a lead to be corroborated rather than as evidence in itself, and documenting the corroboration.

  • Difficulty
Start
Beginner

Desktop Applications with WPF

Sw2:academic01:obj:p1:ukoqnzexwekaddfbikdjdzxsh2c3y2n6umitktxytlckqxbiloga:4a39305e

1 h

build a Windows desktop application with WPF.

  • Difficulty
Start
Beginner

The Reading Aloud Requirement (Verlesung)

Sw2:academic01:obj:p1:iwrejz32pxvyjvgdtts3b2jaeb2osd6okk5oxej4tj2n5g7xfcja:be835c9c

1 h

describe the notary's duty to read the deed to the parties before signing.

  • Difficulty
Start
Advanced

Proving CMS Effectiveness

Sw2:academic01:obj:p1:hasgcphm4jpq77eg4zi77xch7p33mm7t7wmrg4e5kk7tphdc2ysa:adc9f028

1 h

How to gather the evidence that a compliance management system operated effectively across the examination period.

  • Difficulty
Start
Intermediate

Automation Bias and Overreliance

Sw2:academic01:obj:p1:2tjxl63x5zm3f3ke7sjunmlvtfujpj4x4bub6vtzs22nny5rfzga:59ce3d21

1 h

People tend to trust a machine's output more than they should; effective oversight has to be built to counter that reflex.

  • Difficulty
Start
Advanced

Candidate Screening with AI

Sw2:academic01:obj:p1:rbk7lntsgblkj5c6w4k5knavka5ctmncfbpd7i77ftrynwyhxp3q:a0216362

1 h

Ranking applications against role requirements with AI while keeping the hiring decision firmly human.

  • Difficulty
Start
Advanced

Liquidation and Asset-Based Value

Sw2:academic01:obj:p1:oov6rk6ybtumrly3rcboplel7ckqh7hyqkhm3k5azqc4oeccwggq:bf14b17a

1 h

Computing orderly and forced liquidation values as the floor beneath a going concern.

  • Difficulty
Start
Advanced

Sensitivity of Value to Assumptions

Sw2:academic01:obj:p1:qz2bttkzknecy44xw6hjld2ahjyigiuoccmrkfqe2kxmevf2m4ra:99c3d8e9

1 h

How to find the two or three assumptions that actually move a valuation, so attention goes where it changes the answer. It separates real drivers from noise.

  • Difficulty
Start
Intermediate

High-Risk by Use Area

Sw2:academic01:obj:p1:4om6sn4yukfwy4kvaphekz2thwqnaeyq3xem6r26ukzh6g7w4u3q:a4f5d0e4

1 h

A system is also high-risk when used in sensitive areas like employment, education, or essential services, where mistakes hit people hard. Knowing these areas is the second high-risk test.

  • Difficulty
Start
Beginner

Unit Cost and Cost Driver Analysis

Sw2:academic01:obj:p1:lwzv5rkxd76lkdhgqe5rbvma6mqpmmu3e6cnrpgljghkqcsww5nq:35bdb51d

1 h

compute and compare the unit cost of a public service across providers.

  • Difficulty
Start
Intermediate

Handling Health Data with Care

Sw2:academic01:obj:p1:cwk2ghtgvvjflhgyxpfpecbls3o7ywmfwslmaa7kspf3udmna7zq:22a4c06c

1 h

Health-related information carries strong privacy duties, so data-minimisation and caution apply to every handling step.

  • Difficulty
Start
Advanced

Authentic and Open-Tool Assessment

Sw2:academic01:obj:p1:mkh5zgmibx4j3qhdx6bnxswjy6sxuqrfhnmw3t6zjhr3v46pfe7q:4224c8de

1 h

Authentic tasks stay valid even when learners may use tools, because they measure judgement and application that a tool cannot supply on its own.

  • Difficulty
Start
Beginner

Reading a Tool's Capabilities Fast

Sw2:academic01:obj:p1:2tkpi6hmdv6lhcbjbz7sdathumwslsawxegyqdgn2puel7oy7dlq:dea93490

1 h

Sizing up an unfamiliar generation tool quickly means finding its key controls and knowing what it can do.

  • Difficulty
Start
Beginner

Building Production AI Systems Beyond the Prototype

Sw2:academic01:obj:p1:adrzsktgjnactt6tdszfo3wdse25ohpmfipapmkkqozklbtk6goq:eb375cf1

1 h

take an AI capability from a working demo to a system an organisation can depend on.

  • Difficulty
Start
Beginner

Team Building in the Early Phase

Sw2:academic01:obj:p1:tiwipcxobkxloclgwa7yepkbus3yrlvsmyjbznlxnuoypm3i3rfa:d04ac5b7

1 h

Forming and aligning a new team quickly with AI support in the early phase.

  • Difficulty
Start
Advanced

Interview Guide for a C-Level Role

Sw2:academic01:obj:p1:oynxtovgggkyru7iux6dpsmce7wnjjlbmrcrbzuwngjk3xe5kmta:92357e6e

1 h

Generating a board-ready interview and evaluation framework for a C-level appointment.

  • Difficulty
Start
Beginner

Data Classification

Sw2:academic01:obj:p1:3w7yligqsumaots2zuul3pzrt4nidlyx73yquv3vqslccebzdxvq:9bcbe581

1 h

label data by sensitivity to drive the right controls.

  • Difficulty
Start
Intermediate

Teaching Opportunity Recognition

Sw2:academic01:obj:p1:j3te3efevcdo5m4mt4ckxtuagaizal2uz7ip7uprmvxyqoa3tyea:62fa3cfb

1 h

Helping learners see and evaluate opportunities, and building the habit of spotting problems worth solving.

  • Difficulty
Start
Advanced

Anomaly Detection for Rare Defects

Sw2:academic01:obj:p1:u4kotqgobfw3ghwmh7qe4cct5z2f36ijei7nceaykqgtutd55skq:d64294a7

1 h

When defective examples are scarce, inspection turns to anomaly methods that learn only normal appearance. This handles the common case where good parts vastly outnumber bad.

  • Difficulty
Start
Beginner

The Layers of an Enterprise AI Stack

Sw2:academic01:obj:p1:h7bweqbyrq6m5nphmdhjold474p37ch4rr2req2qte7xv5f72ema:6306bf00

1 h

An enterprise AI platform separates model, retrieval, application, orchestration, and governance layers, each with its own job. Naming them frames every later architecture topic.

  • Difficulty
Start
Beginner

Channel Conflict Diagnosis with AI

Sw2:academic01:obj:p1:t6prc2c2wda2re4ywyq6bepilxi2p5czvaek6mlzfbj5gsmpdgfq:5dcf9890

1 h

surface and reason about channel conflict using AI-structured analysis.

  • Difficulty
Start
Beginner

Evaluating a Learning Programme

Sw2:academic01:obj:p1:ybkztf3zuzdkygcwccljoydxoliubid5jeoi2hw72uv3yovs7n5q:168c92fe

1 h

measure learning transfer and business impact.

  • Difficulty
Start
Advanced

Evaluating a Predictive Maintenance Model

Sw2:academic01:obj:p1:cyvzjrqgm5ixah2437dcbso5xpri3nk6lh5n6lgdew24bwwyogua:32968af5

1 h

A predictive maintenance model is judged by whether it actually reduces failures and cost, not by accuracy alone. Measuring real impact keeps the programme honest.

  • Difficulty
Start
Advanced

Reducing False Positives in Monitoring

Sw2:academic01:obj:p1:fchmsjbuf4h4zfyjbicxphmwl26zfu4o6wrlsq33fcqljldmxbfq:6ef25904

1 h

Cutting false-positive alert volumes while defending that genuine risks are still caught. The tension between noise reduction and missed risk is the hard part.

  • Difficulty
Start
Beginner

Survey Weighting and Post-Stratification

Sw2:academic01:obj:p1:nn6iy3yez4pdxpwjhbbgwl7h4y5iubujwrodpwlkzmnjlvrukv2q:0c395333

1 h

adjust a sample so it matches the population.

  • Difficulty
Start
Intermediate

Building a Repeatable Close Checklist

Sw2:academic01:obj:p1:4y46ggdroiuqum54twxf23nyt6tqrdo6okljcusygtmuza6righq:3827fd2b

1 h

A reliable close depends on a repeatable process. Assembling a checklist with clear human sign-off points makes each close consistent and controlled.

  • Difficulty
Start
Intermediate

Localising a Clip for a New Market

Sw2:academic01:obj:p1:afjeqsnucve4py2xwbxifhettd6a4ndezm6zfzrzfbvadjmmgbda:2a2c86bc

1 h

Adapting a short's captions and voice for a different-language audience while keeping the message.

  • Difficulty
Start
Beginner

Supervising a DBA at EQF 8

Sw2:academic01:obj:p1:c56qudkdgxczlksnaospm5cp3su5fv7sx3nwefubf33gs7bozngq:d650e419

1 h

supervise a practice-based doctorate that meets both academic and professional standards.

  • Difficulty
Start
Intermediate

Machine Hour Rate Costing

Sw2:academic01:obj:p1:2cjkph6t2buqp5luxdwepmhg6hsc3d4oynj7mx7sxaqznbb5pflq:50dda8c6

1 h

How to build a machine hour rate and apply it in job and product costing. It attaches machine-related costs to output on a defensible basis.

  • Difficulty
Start
Advanced

Negotiating a Convertible Loan

Sw2:academic01:obj:p1:cep27zh4yecstz2olajxjuiz2lynqqusoepiwrca6v22hhznvwca:285c8f19

1 h

A convertible's economics and control terms are settled at the negotiating table. Negotiating them well balances speed of funding against future dilution and rights.

  • Difficulty
Start
Advanced

Faithful and Plausible Explanations

Sw2:academic01:obj:p1:7ea3ef2myzf6zhi6mtyrol3ixs7tpqux6czql2ntcmcgcvhevfua:d8bad6a4

1 h

An explanation can sound convincing yet not reflect the real reason for an output, and telling faithful from merely plausible is subtle and important.

  • Difficulty
Start
Beginner

Continuous Feedback Support

Sw2:academic01:obj:p1:7pbtyurhtscwt2meh2vt7sce67gtwnc2gzyuhmvfd6rxot5korjq:eeff9477

1 h

Helping managers give timely, specific feedback rather than saving it all for review season.

  • Difficulty
Start
Beginner

Recognising Synthetic Media

Sw2:academic01:obj:p1:47fthdtdlrji5fz33igieccpk6ojq3ldjbiot7jmkp374ke3ivia:174cb21a

1 h

The current visual and audio tells that reveal fabricated images, audio, and video, and why spotting them matters as fakes grow more convincing.

  • Difficulty
Start
Advanced

Taxonomy KPIs for Turnover, CapEx, and OpEx

Sw2:academic01:obj:p1:35nvkgfdvdewgywdlfcksjlj4gajwguocbw3ltxpvwdtmld7fdma:22a8d6dd

1 h

Computing and presenting the three EU Taxonomy KPIs that show the taxonomy-aligned share of turnover, capital expenditure, and operating expenditure. The denominators and mapping rules drive the result.

  • Difficulty
Start
Advanced

Double Materiality Analysis

Sw2:academic01:obj:p1:okas3tffagdc3udjrmocidt4hdtvdbjyu4jalpifn3uhdewoycja:433c4aa7

1 h

How to assess a double materiality analysis, covering both impact and financial materiality, and test how it was done.

  • Difficulty
Start
Advanced

The Risk-Based Approach to AML

Sw2:academic01:obj:p1:saqdspinqwyvyur5g4emraypgqykdww2mkibr2b4qgmpwlfjlzzq:7d4b5a48

1 h

Applying a risk-based method to anti-money-laundering obligations and justifying the risk rating. The risk-based approach is the organising principle of modern AML.

  • Difficulty
Start
Advanced

Passing GmbH Shareholder Resolutions

Sw2:academic01:obj:p1:6y5ub3w57ymjhvlhu3wptxzbvq7whxia2k577kjjhe767qtrchqq:027a36f8

1 h

GmbH shareholders take decisions through resolutions with their own quorum and form rules. Passing valid ones keeps company decisions enforceable.

  • Difficulty
Start
Advanced

Venture Architecture

Sw2:academic01:obj:p1:q7bkrffwulsdfiotd2jsmww3vmg66gzajwc47w2heqndir34p33q:c9db2236

1 h

Designing the legal entity, ownership, and structural shape of a new venture so it can raise, hire, and scale cleanly.

  • Difficulty
Start
Intermediate

Weaving in Proof Points

Sw2:academic01:obj:p1:swi32v3oh54incwad4l2bqoap25mmwdcgifc5s7nn4ysfgflhzra:90b7b4f8

1 h

How to fold traction, data, and credibility markers into a narrative without breaking its flow or overclaiming.

  • Difficulty
Start
Advanced

Assertions as the Backbone of Testing

Sw2:academic01:obj:p1:2rs6ye7bspks6ukyer3i2upyhig7tqrs2ea2kvpkijpnrwyvhspa:40a3d998

1 h

The financial-statement assertions such as existence, completeness, valuation, rights, and presentation, and tying each test to the assertion it addresses.

  • Difficulty
Start
Advanced

Scoping and Timetable for a CSRD Engagement

Sw2:academic01:obj:p1:5g75qebm7zb4hgf3z34jukret2rnunirktafigm6idicuvkwpnlq:75f67249

1 h

How to plan the phasing and scope of a sustainability reporting assurance engagement.

  • Difficulty
Start
Intermediate

Gradient Descent in Plain Terms

Sw2:academic01:obj:p1:fvthpwzooow7dlhgj4z67qn2an44yejiivsfc323hjpbayvwc4xq:9aba357a

1 h

Gradient descent improves a model by repeatedly nudging its parameters in the direction that lowers error. It is the workhorse behind training most modern models.

  • Difficulty
Start
Beginner

Append-Only Records and Practical Immutability

Sw2:academic01:obj:p1:jr5rahvounl3c5jrnsmdhykpzeika4uwsgmdoz77atgwv235ax2a:9d70aee5

1 h

In these systems records are added but never silently edited or removed. That append-only discipline is what makes history trustworthy in practice.

  • Difficulty
Start
Intermediate

The Employer Duty to Train Under Swiss Law

Sw2:academic01:obj:p1:nzgnr3doxsokgnpz5wnr5o4mcgx7pfgk6mdg7lf3okjr6hrbsm4a:91e8d169

1 h

Swiss employment law places a duty on employers to train staff, which shapes how organisations introduce AI into work.

  • Difficulty
Start
Beginner

What an AI Model Is

Sw2:academic01:obj:p1:gcrn26m6swv3gnt2fi7cgoupi3hiyucchhwnexconk3jffegu23a:641b756c

1 h

A model is the trained artefact an AI system produces, a stored set of patterns that turns an input into an output. It is the thing you actually run when you use AI.

  • Difficulty
Start
Beginner

Tracking Savings Delivery After a Review

Sw2:academic01:obj:p1:infgfm3vmpxbogypbd4rlva6ws5hndcmhjux3afz7ifngqllp7eq:ca013c5e

1 h

monitor whether promised savings actually materialise.

  • Difficulty
Start
Advanced

Plausibility Checking of a Valuation

Sw2:academic01:obj:p1:6w3z22yxwh3ovl5pqrtlsdpe2gvavll27idvv2xt5t4w64xtxfmq:0d7001f6

1 h

Sanity-checking a valuation output against reality before it leaves your desk.

  • Difficulty
Start
Advanced

Reproducibility of an Audit Analytic

Sw2:academic01:obj:p1:cr7nwds4vzozsrxddgk6maxcncwo3ujvwpwwag7eaaj4jpo55j3a:b55d6802

1 h

How to build an analytic routine so a reviewer or inspector can rerun it and get the identical result.

  • Difficulty
Start
Beginner

Innovation Ecosystem Building

Sw2:academic01:obj:p1:l6a7zcnkvpsslp5vnkzoybzejve4etopqnwmeg7dit54qkdj5kka:0258e2cd

1 h

The actors, institutions, and connections, founders, investors, universities, and support bodies, that make a startup ecosystem function.

  • Difficulty
Start
Beginner

IAM and Least Privilege

Sw2:academic01:obj:p1:gdnxx3jkzt3wrlajqzj7hjbzienq4qqdszdtqp53tdvlw3lo4oaq:ae177d03

1 h

grant each identity the minimum access it needs.

  • Difficulty
Start
Expert

Auditing Payables and the Completeness of Liabilities

Sw2:academic01:obj:p1:bjzxy2rhol5utxykteunp7pmedednirnc34saud43ssj3vw2wg5q:952722c8

1 h

Searching the full transaction set for unrecorded liabilities to test the completeness of payables.

  • Difficulty
Start
Beginner

Model Risk Appetite

Sw2:academic01:obj:p1:npjymvxxfjy4oh7naqhf66ufcu6wplbfcli6fty5ac7okkveub7a:a0a6c52a

1 h

state a firm's tolerance for model error and translate it into concrete control thresholds.

  • Difficulty
Start
Beginner

A Repurposing Checklist per Piece

Sw2:academic01:obj:p1:hhy2eqwmh6atd2fn3mwpfqh6uysmwmmekgqm5m4sfgskj3xd4vba:78cd098e

1 h

Standardising how every long piece gets multiplied into many derived posts.

  • Difficulty
Start
Intermediate

AI-Driven Production Scheduling

Sw2:academic01:obj:p1:ch56kpkznor7r3trtl5czhwhkmcmnxxuavt2n7dztolimwarz3pq:40032da5

1 h

AI can schedule and sequence production against constraints such as machine capacity, changeovers, and due dates. Constraint-aware scheduling is a genuinely combinatorial task.

  • Difficulty
Start
Intermediate

Reinforcement Learning

Sw2:academic01:obj:p1:3ieck4foqkkjicraaeph3rf56n6bve3thq5b5b5uodygrzijzqza:5739a4b4

1 h

Reinforcement learning trains an agent through reward and penalty signals as it acts in an environment. It suits sequential decisions, from games to robotics, where feedback is delayed.

  • Difficulty
Start
Beginner

Family and Succession Acts

Sw2:academic01:obj:p1:nq3ktzv6tmgdi4w27dcuazttpjdfw32vhuhesmufqviughwqy2ua:fb0ace43

1 h

list marriage contracts, inheritance pacts, and certain gifts that require a public deed.

  • Difficulty
Start
Advanced

Normalising Earnings

Sw2:academic01:obj:p1:vhaestrrz3thasdku3olh4lzb6iw7rki5hhfynr73sjpyyi24p5q:14bfac0d

1 h

How to identify and adjust one-off, non-operating, and owner-specific items to reach a sustainable earnings base. Normalisation is the judgment that shapes the whole valuation.

  • Difficulty
Start
Beginner

Interoperability Between Systems

Sw2:academic01:obj:p1:s4vi2dltckctotuldrfjmicwkvi4tkw7ewiwncd3eefrrjg7lozq:fa2004a1

1 h

make systems that were built separately work together.

  • Difficulty
Start
Beginner

What MaRisk Requires of Risk Management

Sw2:academic01:obj:p1:v6jl2fdwoxy4gsp3qer2hw54wjbwh3w463h6w5ujtghcdpu2fgka:455792f2

1 h

State the minimum requirements MaRisk sets for a bank's risk management organisation.

  • Difficulty
Start
Beginner

Propagating Measurement Error into a Model

Sw2:academic01:obj:p1:mdxdpwrdpwcp2z4hvmzxx6l5sljnz527cdpx5zzesloxeampz4ia:fec56ffa

1 h

trace how input error becomes output error.

  • Difficulty
Start
Beginner

The Main Model Families and Providers

Sw2:academic01:obj:p1:kqoiyy7qdr4kvd4axm4wx4dwsmarpakhru6ng3lmitxmgyyn5nxq:11d64e70

1 h

A few families of models, each from a major provider, dominate the landscape, and knowing who makes what helps you choose. This is the practical map of the market.

  • Difficulty
Start
Beginner

External Validation Across Sites

Sw2:academic01:obj:p1:f7np22g7fmn5lheqgyworwujw4c7ucwvhw3uillgpirxa6g3rkpa:26d283e8

1 h

test a model on another hospital's population before trusting it.

  • Difficulty
Start
Beginner

gGmbH: Gemeinnützigkeit, Zweckbetrieb, and Umsatzsteuer

Sw2:academic01:obj:p1:by3uczutwoconvdr4al4pkpd46xeqhplhlqma325ro6hj4x4gela:5c26404d

1 h

handle the tax profile of a charitable limited company.

  • Difficulty
Start
Beginner

Photo-Based Description and Logging

Sw2:academic01:obj:p1:e4speo4gxjwfh65wwhpaiw5qs2aztxa6fombjdx4sarwjiq2jh4q:0c768b9f

1 h

A photograph can be turned into a described, structured log entry, speeding up field documentation.

  • Difficulty
Start
Advanced

ESRS Datapoint Consolidation

Sw2:academic01:obj:p1:dqxccvlxwfgtw3tkepxckpbdguubjy7a4vsvh634ihwsq7zauf6a:9925fe51

1 h

Consolidating ESG datapoints across a group the way financial figures are consolidated, aggregating and eliminating so the group total is coherent. Group-level ESG data inherits the complexity of financial consolidation.

  • Difficulty
Start
Advanced

Coverage and Corner Cases in Automation Testing

Sw2:academic01:obj:p1:hmkw3p3i2oak2mjayw57px3l43kkc53d7lxjrouozx32qm3x6qdq:4d30f0fb

1 h

An AI-assisted test set must be judged for whether it actually reaches the safety-relevant states. Coverage judgment is what separates a reassuring test run from a meaningful one.

  • Difficulty
Start
Advanced

Reporting on the IKS to Governance

Sw2:academic01:obj:p1:4yzkjfbxdfdzxh6cl73itdnungcwessj5euq5ezzip4yoklummpq:9a9623e3

1 h

How to summarise the status and deficiencies of an internal control system so a supervisory board or audit committee can act on it.

  • Difficulty
Start
Beginner

AI in Long Sales-Cycle Management

Sw2:academic01:obj:p1:cqo6qb3swc4noqp4s43ctqplr3a7xfnavuekn6p2wpbkbisrfgua:d7b29d7d

1 h

track and nudge a multi-month industrial opportunity through its stages with AI support.

  • Difficulty
Start
Intermediate

Calendarising and Cleaning Comparable Data

Sw2:academic01:obj:p1:7utzupobyvhdzg44zxailryqgaeezchn2e7xiovq4vyl6vr76qlq:f7186a71

1 h

Aligning peers to a common fiscal period and normalising reported figures so a comparables analysis measures like against like.

  • Difficulty
Start
Intermediate

Evolving a Brand While Keeping an Audience

Sw2:academic01:obj:p1:emmqoqbsnq6vivxmtqduc3tg7hwwlgjpzn6z6g476dmelxsbpwdq:6559d678

1 h

Repositioning a creator brand over time while retaining existing followers through the change.

  • Difficulty
Start
Beginner

Managing Prüfungsfeststellungen

Sw2:academic01:obj:p1:sbd62kvidzb5tghacwzu7tlekvkjxjwsrdzzd3gp27e52uxasu3a:d5fb8ab0

1 h

track, assess, and respond to individual audit findings.

  • Difficulty
Start
Intermediate

How Notarisation Works (Oeffentliche Beurkundung)

Sw2:academic01:obj:p1:ek3wln425lv3bzhrwvarx5smx6zaybbhscl5jxsxa2376d3x766q:7a63a073

1 h

What a notary attests in a public deed and why that attestation matters for a document's validity.

  • Difficulty
Start
Beginner

Data Contracts for AI Features

Sw2:academic01:obj:p1:xexf7lem4n5plkjl4cjebxyxpgtrix6ijt7axarb5wggklv7xm2a:5567d888

1 h

agree the shape and quality of data an AI feature consumes and emits.

  • Difficulty
Start
Advanced

Early Warning and Crisis Detection

Sw2:academic01:obj:p1:4hxiacnifymeiiegxix2itan6ccdjj5deb6fb4c22o3wzjn7p7za:bd56c2e8

1 h

How to read AI-generated indicators that signal financial distress before it shows up in the financial statements.

  • Difficulty
Start
Beginner

Turning Raw Data into a Visual

Sw2:academic01:obj:p1:fz4c35nnf6whrnyj7fijyh3u2jc3i3smahebqvfobinh6wbbqqcq:392c2ddf

1 h

Raw tables hide their patterns. Moving from a dataset to a finished graphic involves cleaning, shaping, and rendering the numbers into something readable.

  • Difficulty
Start
Intermediate

Populations, Samples, and Representativeness

Sw2:academic01:obj:p1:tjbkhfjqsl4wg6baayaci4byedsagrt2a327fhdoivtopv2zmrha:3c930825

1 h

A sample stands in for a larger population only when it is drawn fairly, and judging representativeness guards against conclusions that do not generalise.

  • Difficulty
Start
Beginner

Rewriting a Blog or Email into a Script

Sw2:academic01:obj:p1:mv3qdqmbnjprm4dizwscpgxzu33zslgpfuv6lmauoxdsclr2stcq:6700e8fa

1 h

Long written content can be reworked into a spoken short-video script, turning something already made into new material for a different medium.

  • Difficulty
Start
Beginner

Saving and Reusing Good Prompts

Sw2:academic01:obj:p1:rqjvycxbhg3u2pdoapdfghb725tv7nbeantlgjzlf44rq4pfg6bq:3ddb2e85

1 h

capture prompts that worked so they can be reused later.

  • Difficulty
Start
Intermediate

Cash Versus Accrual Reality

Sw2:academic01:obj:p1:h4w6c4liq3qp3do2med44sw4r7cuocu7ambsobbiqj7u7ne3onza:40eb0b09

1 h

Reported profit and actual cash can diverge sharply, and reconciling the two reveals whether earnings turn into real, spendable cash.

  • Difficulty
Start
Beginner

What Consensus Is

Sw2:academic01:obj:p1:lf2dzmmigob7um24gjczh2a7w4y5zuydawrqhjr2o5qvmrtnvxga:cc7df6ee

1 h

agree on a single value across unreliable nodes.

  • Difficulty
Start
Advanced

Mitbestimmung and AI Rollout

Sw2:academic01:obj:p1:mr2ohx3awi5i6vj762x4tzhusvaxugphq4a45qu24mdbnfkbrl3q:7b98c087

1 h

Identifying where the Betriebsrat must be involved in an AI rollout under co-determination law.

  • Difficulty
Start
Beginner

Recognising Fabricated Output

Sw2:academic01:obj:p1:qc6pg3r6aqgi5geo3w7tqvkhl4wofzbsaeg6pmfdsgzf4hhn3xga:8c37c2b9

1 h

Certain signs, like overly specific citations, suspiciously neat detail, or claims you cannot verify, suggest a passage may be invented. Spotting them is a practical defence against hallucination.

  • Difficulty
Start
Advanced

Total Cost of Ownership of an AI System

Sw2:academic01:obj:p1:r3ybvmtj2v4y35yq5pusoheq5hofvkqawggypqi7lw7sc6snupda:54d7ded2

1 h

How to build a full cost picture of an AI system including data, inference, oversight, and maintenance over its life. Sticker cost is a small part of the total.

  • Difficulty
Start
Advanced

Liquidity Planning in Crisis

Sw2:academic01:obj:p1:s4drw7vmgpm6indsc3oigim65bgjaqx6m6gizzz27bjv7n6etnfa:f483b246

1 h

How to test a crisis liquidity plan for completeness and realism, so the cash runway it promises can be trusted.

  • Difficulty
Start
Beginner

Dynamic Pricing in Retail

Sw2:academic01:obj:p1:pohjd4pliduvxloe2yore3t5pu67rcgphzqvzc2hmhybk34wpwea:9fbebe61

1 h

read an AI dynamic-pricing recommendation and the fairness and trust limits around it.

  • Difficulty
Start
Advanced

Simulating Mechatronic Systems with AI

Sw2:academic01:obj:p1:ys7hn6aton24xuzkeeshxfp7iij4xnj6qt5h6fouxf2sxdtq7f3q:96fcfaf9

1 h

AI can accelerate or extend the simulation of a mechatronic system, for example as a fast surrogate. This speeds design iterations that full physics simulation makes slow.

  • Difficulty
Start
Beginner

Locking and Deadlocks

Sw2:academic01:obj:p1:wrstfiyvuxamgu3wvzyj4vxef2kpysi2ek632hyz3nfs5fwqrqcq:e57357e0

1 h

understand how the database serialises access and how deadlocks arise.

  • Difficulty
Start
Intermediate

What Bias Means in AI

Sw2:academic01:obj:p1:v5ijdvepiq7bbrpnd7j2p4ojnp6xwzbw2szsgj7tk4g25yai4hxq:d9daa6d8

1 h

In AI, bias means systematic and unfair error, not a personal preference, and fixing this definition is the foundation for everything about fairness.

  • Difficulty
Start
Beginner

Supply-Chain Integrity Levels

Sw2:academic01:obj:p1:ovbjdhrtvgxutfm7wg7rpwfa6f6g7pirwc57akfniqmotihnkedq:a118a4c4

1 h

raise build integrity against an SLSA-style maturity ladder.

  • Difficulty
Start
Advanced

Climate Risk in Accounting and Audit

Sw2:academic01:obj:p1:e5l2ylhwfesnurze4dlttkxptseey3x3vvljgcvigfapajiyctnq:a67c6406

1 h

How to locate where climate risk touches the financial statements and test whether it is properly reflected.

  • Difficulty
Start
Intermediate

Sourcing Comparable Evidence with AI

Sw2:academic01:obj:p1:boyzo6dxpdnnqj3zpq3nehm4dtv5fo4a2ylkfeepub6ath7hykjq:40c028c9

1 h

Gathering and verifying comparable data with AI while refusing to trust fabricated figures or invented citations.

  • Difficulty
Start
Beginner

Writing Unbiased Survey Questions

Sw2:academic01:obj:p1:5nrs6l5po464k5tes4pxnzdnskopmfkkby32wxwf6qeocaaeyrga:c8708b83

1 h

word items to avoid leading, double-barrelled, and ambiguous questions.

  • Difficulty
Start
Intermediate

Terminology and Glossaries

Sw2:academic01:obj:p1:eonae4eerdazeko7zik6r2vznmgl26qq7uscmvzcgfgfr46ffanq:a042c46f

1 h

Consistent terms matter in technical and legal content. A glossary of approved terms steers a model to translate key vocabulary the same way every time.

  • Difficulty
Start
Advanced

Building an HR KPI System

Sw2:academic01:obj:p1:gk23mk5zjqvo4dquapfpxeda7yv2rgzftlfv4dztvfqihldfmjnq:b73da7f6

1 h

Designing a coherent, defensible set of HR metrics from scratch, wired to decisions.

  • Difficulty
Start
Advanced

Scope and Purpose-Limitation Clauses

Sw2:academic01:obj:p1:ijbz4xzlxrgm2xk464km27pjzcocdfyjil65spl3scegz7n4ojua:dde88fc2

1 h

Drafting clauses that bound which AI systems and purposes a works agreement permits. Tight scope and purpose limits keep the agreement from over-authorising.

  • Difficulty
Start
Advanced

Mass-Dismissal Thresholds and Notification

Sw2:academic01:obj:p1:gopctyycygpmpcldesvpmge3mgc2yc6bpjkwqayrt2fxekhuzqua:656530f9

1 h

Mass-dismissal thresholds trigger a formal notification duty that has to be applied precisely.

  • Difficulty
Start
Advanced

Overhead Surcharge and Machine-Hour Rates

Sw2:academic01:obj:p1:hykswgj4acqapxmdojlvsvhxirdpb7rvfzlgog3ady2d25t6f5rq:0f45f909

1 h

Deriving and applying surcharge percentages and machine-hour rates to load overhead onto products. The choice of rate base drives how fairly costs are spread.

  • Difficulty
Start
Advanced

Investment Research That Survives Hallucination

Sw2:academic01:obj:p1:oaigbyxyo67v756qc2wpmv5hjmzmyyl4bmu2yi6vqtmzhi6zpcnq:7f295671

1 h

Running a buy-side research workflow with disciplined verification so AI-generated findings never enter the analysis unchecked.

  • Difficulty
Start
Advanced

Conflicts Within a Founder Circle

Sw2:academic01:obj:p1:ruzff64arbznkzzbt4tjmnem6dbgtzpjpgl3xhsyx6saoooq4lpa:7df2b1f4

1 h

Founders often wear owner, manager, and director hats at once, breeding overlapping interests. Handling these conflicts keeps early governance functional.

  • Difficulty
Start
Beginner

Polyglot Persistence

Sw2:academic01:obj:p1:5n4ygekr347yiezcdgbf2zfzjifkx6rg45i3klj2qdnkaadgi4gq:2a50de9b

1 h

combine several data stores in one system, each for what it does best.

  • Difficulty
Start
Intermediate

Prototyping and Iterating

Sw2:academic01:obj:p1:xolk5i4awi6z5mg7t5mdafgmo6wx4ff5rqdpu34vdnz65jrrakoq:bbb0a25b

1 h

Trying an AI feature out quickly and improving it in small steps before committing to a full build. Fast iteration finds what works while changes are still cheap.

  • Difficulty
Start
Intermediate

Authoritative Records and Derived Views

Sw2:academic01:obj:p1:5ntayhdgvauu4dc45ou2nlbgfaapbb7igxm4clwlqp56vetbzpqq:df6ff857

1 h

The governing record is distinct from the reports and caches generated from it. Keeping that separation clear prevents derived data from being mistaken for the source.

  • Difficulty
Start
Advanced

ESRS Environmental Standards E2 to E5

Sw2:academic01:obj:p1:2ilq6i5ulvcmjwrkojreyqeudqoxkk3riu74wjaro3bq67ebsldq:f6af869e

1 h

Covering the ESRS environmental standards beyond climate, spanning pollution, water and marine resources, biodiversity, and the circular economy. Breadth across four topics is the challenge.

  • Difficulty
Start
Advanced

Emission Allowances and ETS Accounting

Sw2:academic01:obj:p1:cyj6ump2727akmatlrezl65xtabigbceadjvejazoxel5bl5d6nq:6c38fbd6

1 h

Accounting for emission allowances that are purchased or granted under an emissions trading scheme, where recognition and measurement guidance is famously unsettled. Policy choice drives very different results.

  • Difficulty
Start
Beginner

Detecting AI-Generated Manuscripts

Sw2:academic01:obj:p1:426d623ipu5mdbo5xxikrvujfieeo3n44l62t2242w3bxg7jdhhq:d6893b30

1 h

recognise signals of undisclosed AI-generated or fabricated submissions.

  • Difficulty
Start
Beginner

What the NIST AI RMF Is

Sw2:academic01:obj:p1:x2qorchywred4ggz2analjz4ki2w2daxcjvzbyuwypwdu5vghg4q:a258e87c

1 h

The NIST AI Risk Management Framework is a voluntary US framework for identifying and managing AI risk. Its influence comes from adoption, not legal force.

  • Difficulty
Start
Beginner

Matching Method to Question

Sw2:academic01:obj:p1:tamgsegdxarhia4lqstgdcugtkge472xyzpfc3rbsfesgasoz7dq:d9c0099a

1 h

choose a methodology that actually answers the research question, using AI as a challenge partner.

  • Difficulty
Start
Intermediate

Signing to Closing

Sw2:academic01:obj:p1:6xknszpgeng37uquvg75dxn52fg4i4fmeyz3dsd5mg6tk6jewbuq:1c33c9d2

1 h

Managing conditions, clearances, and the gap between signing and completion so nothing derails a signed deal.

  • Difficulty
Start
Intermediate

Warranty and Indemnity Insurance

Sw2:academic01:obj:p1:qixqqi5q5ptfdxsm6csciqg6p4yzauvnbcb4hro4jekmkdsi5kca:3757ee2c

1 h

Reasoning about W&I insurance in a transaction and when transferring warranty risk to an insurer serves the deal.

  • Difficulty
Start
Beginner

Representing a State Owner on a Board

Sw2:academic01:obj:p1:inb2u7qma7smpgj52rse4acaigtlzibft6tcnd4q7gsseixvxvba:2fdc2af4

1 h

prepare a state representative for supervisory-board duties.

  • Difficulty
Start
Intermediate

The Compliance-First Posture

Sw2:academic01:obj:p1:nt2kxnvtfbsf3zeda2plcvawyxqqfkx3whhyyzbebubix2mjro2q:68d1ece9

1 h

Building governance in from the start is cheaper and safer than retrofitting controls after a system is live. This posture reframes compliance as design, not afterthought.

  • Difficulty
Start
Beginner

Building a Model Inventory

Sw2:academic01:obj:p1:linhvj6lfpe6t5hhsk33x7bzxtfpn5t54tc52psojmwhlm36cenq:3929cc93

1 h

assemble and maintain a complete register of models in use, including embedded, spreadsheet, and end-user-computed ones.

  • Difficulty
Start
Intermediate

Make-or-Buy Decisions

Sw2:academic01:obj:p1:23e77gg5vysprcr7sn6ury6mizeyi3ouc6ga2eli6vvynowipwna:8638570d

1 h

Structuring a make-or-buy analysis with AI-assisted costing, comparing internal build against external purchase on a like basis.

  • Difficulty
Start
Advanced

Journal Entry Testing for Fraud

Sw2:academic01:obj:p1:jcasghblikicxclg3qipd5g7egtgrhmn73xcxa5s5ft25lzo3opq:c75eac65

1 h

Testing journal entries for manipulation indicators across the full population. Full-population JET is a core forensic-accounting method.

  • Difficulty
Start
Intermediate

Scenario and Case-Based Items

Sw2:academic01:obj:p1:b7gbr64gdln7usfnyb6ccqfeismaulyu3livn6yqbawybdyq3dmq:4df902ab

1 h

Application items set a realistic scenario and ask the learner to act on it, measuring transfer of skill rather than isolated recall.

  • Difficulty
Start
Intermediate

The Wasp Layer 2 Committee

Sw2:academic01:obj:p1:la3smvywg362j5ildvmjbydyctyihet7w2dmjseizwpid4g6s4aq:37081165

1 h

Wasp is the Layer 2 committee that executes and verifies application logic above the base ledger. Its role explains where computation happens in the stack.

  • Difficulty
Start
Advanced

Blue-Green and Canary Releases for AI Services

Sw2:academic01:obj:p1:rgtkwgpll4ctw7vdd6qq3k35a4nm6s6s7mjowfc6tzcg5frkj2ha:43515232

1 h

Exposing a change to a slice of traffic first limits the damage if it fails. Blue-green and canary patterns make releases progressive rather than all-or-nothing.

  • Difficulty
Start
Beginner

The Node Certification Checklist

Sw2:academic01:obj:p1:gpsdyejupdzrtlhgw6gjftkzeu7ovp63vy4aw67rsy4xhjbhsvcq:ce64a836

1 h

Map node operation onto recognised security and distributed-ledger criteria, and evidence each item.

  • Difficulty
Start
Advanced

Explaining Model Risk to a Supervisory Body

Sw2:academic01:obj:p1:ragrt6gkw77nj43jnlelhfqmjkrmplnd5yozf7cdlbqzvgixtboa:1d1a0687

1 h

A supervisory board needs model risk explained in terms it can act on, not in technical jargon. Translating it well enables real oversight.

  • Difficulty
Start
Beginner

Adapting Trends While Staying Original

Sw2:academic01:obj:p1:d6rvd3673ekxqklzimjb62cmmpa7anmssdwnzmqw3qcx2r4d675a:386c0c0e

1 h

Riding a current audio or format trend gets reach, but keeping your own message intact is what stops the clip from feeling derivative.

  • Difficulty
Start
Beginner

Crypto-Shredding for Deletion

Sw2:academic01:obj:p1:jybiarvgpx2lgbjovvbfu7h6v5jjpnctnwpmgf3trqqruphyhw4q:19d3ecae

1 h

delete data reliably by destroying the keys that unlock it.

  • Difficulty
Start
Intermediate

Unit Economics

Sw2:academic01:obj:p1:yq7tyhmfrk2phr2d47bl77nxsjrfvqp5wglrveip2g2wis52maxa:ee11db87

1 h

How to build and read the unit economics of a product or subscription, from contribution per unit to payback and lifetime value. It tells you whether growth pays for itself.

  • Difficulty
Start
Beginner

The P&L Attribution Test

Sw2:academic01:obj:p1:g73hsahgmzadxbzrdvojgdbywi7wuabdy5p2fwaj3sc5izix25iq:d4112fab

1 h

Explain what the P&L attribution test checks and why a desk can fail it.

  • Difficulty
Start
Beginner

How Video Generation Works

Sw2:academic01:obj:p1:x3636bc5lwtugjj3236bthlp2bj5zunziwc2sgwxpp7clba5d6pq:1c335503

1 h

Generating video means producing many coherent frames over time, a far harder problem than a single image. Knowing what is involved sets realistic expectations for the technology today.

  • Difficulty
Start
Intermediate

KPIs That Steer Rather Than Report

Sw2:academic01:obj:p1:fsjgf3h2ynynfxsuhwelpllvcx3ihxnq2jl6m3slva3x3k7xuojq:c3eb33cb

1 h

Separating steering metrics from reporting clutter and pruning a bloated KPI catalogue down to what drives action.

  • Difficulty
Start
Advanced

Detecting AI-Generated Submissions

Sw2:academic01:obj:p1:2uy7s63ytx6hd2zhvi47wawl4uitph6wepds2xvb7e4m4vry333a:7455510b

1 h

Judging whether work was written by AI is unreliable, so any judgement must weigh weak evidence carefully and respect the real limits of detection.

  • Difficulty
Start
Beginner

Erasure versus Retention on an Append-Only Structure

Sw2:academic01:obj:p1:pf42zacqi4qubowx6mofobgatt6su4o3pk54nxa3yuww2c5ex4aa:84f3c5c9

1 h

Weigh crypto-shredding and off-ledger payloads against both the data-protection test and the evidentiary-validity test.

  • Difficulty
Start
Advanced

Tag-Along and Drag-Along Rights

Sw2:academic01:obj:p1:rwo6m7embjf44x4p5y7plliy6jmxut7ylcxpqthec5bdy2ivp6qq:bc1e55a8

1 h

Tag-along rights let minority holders join a sale; drag-along rights let majority holders force one. Designing them well makes an exit workable for all sides.

  • Difficulty
Start
Advanced

Redundancy and Diversity Around AI

Sw2:academic01:obj:p1:ko3w3rrfm5tpklyz7bwqwh5dygutcnqaa7yt3ubdzpw2hy7fkk6a:80ff8cd4

1 h

Redundant and diverse channels are arranged so that a single AI fault cannot cause harm. Designing them is a classic safety technique adapted to AI.

  • Difficulty
Start
Beginner

The Arm's Length Principle

Sw2:academic01:obj:p1:luttga6sondy5k6du63w4qbrbgkcji5rawtpvrnbmpemza3utcmq:a51ba6cd

1 h

apply the standard that related parties should price as unrelated ones would.

  • Difficulty
Start
Beginner

High-Stakes Decisions and AI

Sw2:academic01:obj:p1:qcj2feoaqvqun3grjona2uh6edg7wtza773txo7oro7wz2nw7gpq:58ef01c8

1 h

locate the decisions a human must own.

  • Difficulty
Start
Advanced

Accruals and Deferrals (Rechnungsabgrenzung)

Sw2:academic01:obj:p1:n2pikhg6su2tql3mrcewkmi4ufb46v34y45w7oji747p2zqcgf7a:814e2d69

1 h

Costs and revenues belong in the period they relate to, not the period they are paid. Identifying and computing accruals and prepayments from contracts and invoices puts each item in the right period.

  • Difficulty
Start
Advanced

Approval Workflow for New AI Uses

Sw2:academic01:obj:p1:w3tocuke2f25by26jhtg4z6qmdrliuncmo6qbmxuzf2wjg6ywoua:72b6d612

1 h

A defined gate lets a new AI use be reviewed for risk, data, and fit before it goes live. The workflow makes adoption deliberate rather than accidental.

  • Difficulty
Start
Intermediate

Designing a Cheap Experiment

Sw2:academic01:obj:p1:g4bbintqykkds2vl3yknccbomcopmm6rl437e6yrte4vguccj2aa:1b64f02f

1 h

The point of an early experiment is to buy the most learning for the least time and money. Good design isolates the one assumption that matters.

  • Difficulty
Start
Beginner

Keeping the Source Traceable

Sw2:academic01:obj:p1:p42f247pq4cjvfo7xoozyqkizbtyokdgugidejmzmnrmm5x2raxa:d10f9663

1 h

tie each claim back to where it appears in the source.

  • Difficulty
Start
Beginner

Clause Libraries and Template Assembly

Sw2:academic01:obj:p1:4ttqieg56djvtwfyy3jpdjusq4u2uqo4iowdxsl7fa4zerl65nia:3d9d05ef

1 h

assemble a document from approved clauses and matter variables.

  • Difficulty
Start
Beginner

Verwaltungsrat Practice Under Swiss Company Law

Sw2:academic01:obj:p1:6cqaiznvkqvhytasd2lrsjwomes6ipvo7efvbyy5xhbixgxep65q:dbf3ee7a

1 h

apply Swiss board duties to a governance decision with AI support.

  • Difficulty
Start
Intermediate

A/B Testing Hooks and Thumbnails

Sw2:academic01:obj:p1:3onc4ljazoych3ggkyvhecnsour3cbcqgi3ernibluvwqirszuua:79013b4b

1 h

Comparing openings and covers in a controlled way to learn what genuinely works.

  • Difficulty
Start
Beginner

Hash Functions and Collision Resistance

Sw2:academic01:obj:p1:yhwi5bkgt752wl3eph5jxpybn4bo5bnfvjfk5mydegnurq5aabcq:dc014c98

1 h

explain what a cryptographic hash guarantees for an AI artifact and where it fails.

  • Difficulty
Start
Beginner

Interpretable Models for Clinicians

Sw2:academic01:obj:p1:rgpk2an45rswvix5lch4lzekroz75mb7mn6j2cri2g2nzmrhgb6a:cf443bc8

1 h

favour models a clinician can inspect and reason about.

  • Difficulty
Start
Intermediate

Transparency of AI Scoring Criteria to Staff

Sw2:academic01:obj:p1:bn46ltsctn4clk4qkih4o6itfq7ul5b6ixr4gym5xtxnl2bc56va:7b48c4e8

1 h

Staff are entitled to know which factors an AI appraisal tool weighs, which sets the transparency an employer must provide.

  • Difficulty
Start
Beginner

The Knowledge Cutoff

Sw2:academic01:obj:p1:3xurfwshynarnqxrb7xcmzghzmjxk5cp7eze7iemkquwktzt23na:f23f6e6b

1 h

A model only knows what existed in its training data up to a cutoff date, so it cannot answer about anything newer on its own. This shapes when you can trust it for current facts.

  • Difficulty
Start
Expert

Physics-Informed Machine Learning

Sw2:academic01:obj:p1:p4gh66llriid6xnjnebhtqdrb6w3uqjabz3faymkkrsc6uqigtbq:095b21bb

1 h

Physics-informed learning constrains a model with physical laws, improving reliability and cutting the data needed. It is how learning stays faithful in data-scarce engineering settings.

  • Difficulty
Start
Beginner

Verifiable Credentials and Certificates

Sw2:academic01:obj:p1:25dfdnxesdel46yzwmex7gphca77eic647zs6mj2mswuhrmn6wka:01e988ef

1 h

issue and check tamper-evident credentials against a ledger.

  • Difficulty
Start
Advanced

How a DAG Orders and Confirms Transactions

Sw2:academic01:obj:p1:6ganerda3e3ijgjmx3dy36fnemik43xkl7wyrtchwtlpz6wd6r3a:5a756e9d

1 h

A DAG has no single chain to define order, so agreement on sequence and settlement works differently. Understanding it explains when an entry counts as done.

  • Difficulty
Start
Beginner

Blocking and Covariates

Sw2:academic01:obj:p1:qnm3mkqd7dgldcavz3ummpaxq467dr3yx26ms6rg5ptysrowy4uq:66018ab8

1 h

remove nuisance variation to sharpen an experiment.

  • Difficulty
Start
Intermediate

CSRD Phase-In and Timetable

Sw2:academic01:obj:p1:d3jrchwp4awqv4jmtxxtgin572ybh6aowgdrr6sbhim623mg4wkq:8d4d082c

1 h

Building the reporting timetable for a group as the CSRD phases in across entity types and years. Sequencing first-time reporting across subsidiaries is the planning task.

  • Difficulty
Start
Intermediate

First Customers and Design Partners

Sw2:academic01:obj:p1:p2xaqnymtsj7ts66callfukcvwpa26jp6cqlht4qhintqyywshpa:30f148dc

1 h

Early customers who co-shape the product are worth more than passive buyers. Recruiting design partners trades polish for influence.

  • Difficulty
Start
Beginner

Domain Events

Sw2:academic01:obj:p1:m5lvglx4jo4cvuxbiorq2u7d3or3nem2vvmw3aweym4oltsnozoa:f6b53157

1 h

model significant business occurrences as first-class events.

  • Difficulty
Start
Intermediate

Preparing to Negotiate with Banks

Sw2:academic01:obj:p1:wywjl4xxt27wsit7ar7n7bxd75zparyykqc5xeysn4rp36depzwq:b710ae49

1 h

Getting ready for debt and banking conversations on the bank's terms, understanding what lenders weigh.

  • Difficulty
Start
Advanced

Failure Modes at Scale

Sw2:academic01:obj:p1:hf2flqynsj67sqlfgc765dm3usacm5s5ixkhzwpgpvwogty7jr4a:7d35bd61

1 h

Distributed systems break in ways a single machine never does: partial failures, partitions, and races. Anticipating these modes is central to sound design.

  • Difficulty
Start
Advanced

Group Compliance Governance

Sw2:academic01:obj:p1:hnsrzsdxj4ln4ctfmwa44bxz5kda2bbqc3k7svwv2aouz3jlztsa:6a3d83a8

1 h

Governing a compliance management system across a holding and its subsidiaries with consistent standards.

  • Difficulty
Start
Beginner

Specifying Fields and Types

Sw2:academic01:obj:p1:obavdgqt6vnh4xdyszgprkdd4fcvayxjsqotjp2ulilbxv6cq7qa:e1cda8fe

1 h

define the fields and value types an answer must contain.

  • Difficulty
Start
Intermediate

Interim Management in a Crisis

Sw2:academic01:obj:p1:qgdbjjqgneh3nhssxmnz3tmmmzsis3udqcwh6gxidxhjiexp4w5q:1d5c000f

1 h

An interim leader parachuted into a distressed company needs a clear, bounded mandate, and framing it well sets up everything that follows.

  • Difficulty
Start
Advanced

Cost-to-Serve Analysis

Sw2:academic01:obj:p1:pwolvguagajemc7sml4dwc7jvkx655oicxg2kywloglgev5uzn2q:293a0abe

1 h

How to quantify what it costs to serve a segment and reprice or reshape the offer accordingly. Serving cost often swamps the headline product margin.

  • Difficulty
Start
Beginner

Managing Changing Requirements

Sw2:academic01:obj:p1:sgywefapd5j3mpa2weuwych7dcxvfrllw7be2ihqogjnhh67bj5q:dfd98965

1 h

handle scope change without letting the system drift.

  • Difficulty
Start
Beginner

Nodes, Validators, and the Network

Sw2:academic01:obj:p1:jdee5td7kql3f4o7ow26gpc7auwj22gf7gci3i4zply4lizaniya:20aac274

1 h

A ledger is run by participants with distinct roles: nodes, validators, and the network that connects them. Naming who does what is the first map of the system.

  • Difficulty
Start
Advanced

Collaborative Robot Safety with AI

Sw2:academic01:obj:p1:usgs6k2fbtuebhmkjw24qtp2txa7jkfascjlnipmyfgnffktzpka:6f2b30e2

1 h

When AI drives a collaborative robot, speed-and-separation and power-and-force limits from the safety standards must still hold. Preserving them is what keeps a shared human workspace safe.

  • Difficulty
Start
Advanced

Linking the Three Statements

Sw2:academic01:obj:p1:a7espks5zmazks2mobnur5udkckjezykixjxu5zpsivelfbmqi2q:347f4beb

1 h

Connecting income statement, balance sheet, and cash flow so the model balances and cash ties out every period.

  • Difficulty
Start
Advanced

Ethical Reflection as a Management Process

Sw2:academic01:obj:p1:lzmzuoetzqm6casesusyu32k5fodyyx3io7xcvq5pb4pvccm6x5q:5099dc2f

1 h

Building ethical review into routine people decisions rather than treating it as an afterthought.

  • Difficulty
Start
Advanced

Input Validation and Sanitisation

Sw2:academic01:obj:p1:b7afgedo6xcbaiyvmpp7zsepp7jc2alo6f4osokgn3ofso7lh63a:c1a192ad

1 h

Checking and cleaning untrusted input before it reaches a model. Validation blocks malformed or hostile content at the door.

  • Difficulty
Start
Advanced

Detecting Aggressive Accounting

Sw2:academic01:obj:p1:cf53nr7ff3ksikog7uirzxonejxkmxmetzoi2q3qe2idsll6somq:9d3543ba

1 h

Aggressive revenue recognition and capitalisation choices inflate reported results; spotting the red flags protects a buyer from paying for illusory profit.

  • Difficulty
Start
Beginner

Categories of Health Data

Sw2:academic01:obj:p1:md35ldxrsyw3pnlmic23yvw36zzywwqc7nx6rapa5xawc46d3yka:6c6ed06b

1 h

distinguish clinical, genetic, imaging, claims, and wearable data and their sensitivities.

  • Difficulty
Start
Intermediate

Team Building in the Early Phase

Sw2:academic01:obj:p1:xw2pqhxtn3kjb7jjv763o6cvey3cxncbqzeo4w7hnanzbq7cjsqa:6a1f571b

1 h

The first hires and the norms around them set a venture's working culture. Early team-building compounds for good or ill.

  • Difficulty
Start
Beginner

Use-Case Triage for Bank AI

Sw2:academic01:obj:p1:ocibghhzrlryhs2xig75kpx3gitkkooopijo73j26p3b5yqsrrgq:00294c7e

1 h

Sort proposed AI use cases by risk and route each to the right control path.

  • Difficulty
Start
Intermediate

Pricing for the First Customers

Sw2:academic01:obj:p1:6vxdm6r36qrj4nasr2rqgqbyoflcbibwpuvkiehfdi7lvrejdrwq:23006a0d

1 h

Early prices must earn both revenue and learning about what buyers value. They are experiments as much as transactions.

  • Difficulty
Start
Advanced

Limited Assurance on Sustainability Reporting

Sw2:academic01:obj:p1:pdwrhwjswn26zfvxlbvuamikn6u35a2x56jfkd3v42mtpcwiv7ba:86156c73

1 h

How to apply the limited-assurance standard to ESRS disclosures and know exactly what evidence it demands.

  • Difficulty
Start
Beginner

Migration Assessment and Readiness

Sw2:academic01:obj:p1:zz35ftckewbpqx3chnt3zxqxmoeo4lt6ctvay3eoyvsjgvhmrpcq:4264157d

1 h

judge which workloads are ready to move and in what order.

  • Difficulty
Start
Advanced

Value-Chain Data Gathering

Sw2:academic01:obj:p1:5ioz37g3ssafya5hkhcdbbnihbvcu6sa3z3fqapgspv2r7l3bmiq:2dd966bc

1 h

Collecting and validating ESG data from upstream suppliers and downstream users where a company lacks direct measurement. Data quality falls off fast once you leave the company's own boundary.

  • Difficulty
Start
Beginner

Seeds, Variations, and Reproducibility

Sw2:academic01:obj:p1:efglzc3wbleyc6e37oug454tbuscrec5a57qa2lx2kfnud3xgeqa:fb2df6a2

1 h

Seeds and variation controls let you reproduce a result exactly or diverge from it on purpose.

  • Difficulty
Start
Beginner

From Model Idea to Auditable System

Sw2:academic01:obj:p1:gi6qlpj7xdwhptf7dl4elwlmbgj7opcvtwbwgkhs447fn35cbcna:a24cf4d8

1 h

Take a model from concept to a system whose behaviour can be audited.

  • Difficulty
Start
Advanced

The CMS Effectiveness Audit

Sw2:academic01:obj:p1:zwe5n3bo4kzmcurlw3mtly6udpquhk6mz7vbqvhwcoia7e7pqbdq:c46c37be

1 h

Gathering evidence that CMS controls actually operated effectively across a period, using AI to test control execution. Effectiveness is the deepest assurance PS 980 offers.

  • Difficulty
Start
Beginner

Measures of Spread in Practice

Sw2:academic01:obj:p1:jczhx7u56z7l5v7jj4yqojc5bxycgtyruynb3rsdmiduxvktsmjq:ecff3827

1 h

report variance, standard deviation, range, and interquartile range and say which fits the data.

  • Difficulty
Start
Intermediate

Writing an Item to a Learning Outcome

Sw2:academic01:obj:p1:qholax7beab7ywqt6apkcundlll2ubfgtzuxbdrda6yzbctirqdq:c891823e

1 h

A good item measures exactly one intended outcome and nothing else, so a correct answer means the learner has the skill the outcome names rather than an unrelated one.

  • Difficulty
Start
Beginner

Exit and Contingency for an Outsourced AI Service

Sw2:academic01:obj:p1:fqazwxzjsyzx2siilbm7adj3vnownhmmet73l3vo3tkexrbspora:ccf5cb8c

1 h

Plan an exit and contingency so a supervised firm is not trapped by a vendor.

  • Difficulty
Start
Beginner

Mapping an AI Deployment onto MaRisk Modules

Sw2:academic01:obj:p1:tlxmdhijqzm6iqjhh623tmd5fx662vrpztr5x27j65za3w4jn7bq:d696c692

1 h

Produce a coverage map from an AI use case to the specific MaRisk provisions it must satisfy.

  • Difficulty
Start
Intermediate

What Makes a Certificate Verifiable

Sw2:academic01:obj:p1:fayb6conaobn7dtorm5vje65qyr3cnhn53znn626zyfwh26ddvba:5c8a31fe

1 h

A verifiable certificate has properties that let anyone confirm it is genuine and unaltered. Identifying them separates real verifiability from mere claims.

  • Difficulty
Start
Advanced

ESRS Social Standards S1 to S4

Sw2:academic01:obj:p1:n5p2jaq6afywjys457ax57jzrbpmbdhng2oxgmxxzfcwmetpbl2q:3a658644

1 h

Assembling the social disclosures under ESRS S1 to S4, from a company's own workforce to workers and communities across its value chain. Reaching value-chain data is the hard part.

  • Difficulty
Start
Beginner

The Statistical Core of Six Sigma

Sw2:academic01:obj:p1:lfdyws4iuky2k2druoeaeknvgxz7rn5k52xupptiaris3e5763gq:2eb006e9

1 h

apply the statistical tools behind Six Sigma improvement.

  • Difficulty
Start
Beginner

Access Logging for Datasets

Sw2:academic01:obj:p1:ytrbarrqbvj5po35eypypxo2oeaiddch22fbovqri7davdbys77q:c4c87607

1 h

record who touched which data and when.

  • Difficulty
Start
Expert

Auditing Inventory Valuation

Sw2:academic01:obj:p1:vkdjuoo2qq2ypjqr2deldhzyopdx4oavom7n2rknxkgwxhtl3sha:8b169bf1

1 h

Testing inventory quantities, costing, and write-downs to net realisable value using data analytics.

  • Difficulty
Start
Intermediate

Documenting Data and Data Governance

Sw2:academic01:obj:p1:irlwqf3apcswofc3o5v75mpnjg6vl65sgi4kdeuhqewwzolowsxq:d08b0006

1 h

The technical file must trace where a system's data came from, how it was prepared, and how it is governed.

  • Difficulty
Start
Beginner

The Sense-Decide-Actuate Loop with AI

Sw2:academic01:obj:p1:wejgyyn7wi5tsgvspdoexyp4l5albp7zggeqytfaynpl7nln4e2q:7b3dbc22

1 h

The classic mechatronic sense-decide-actuate loop maps onto perception, inference, and actuation once a learned component is added.

  • Difficulty
Start
Beginner

Why AI Output Needs Checking

Sw2:academic01:obj:p1:lpht7qpnaqftp2ymbvzfipk33lzprynakfumxa6hnszifocbykta:25ebc3db

1 h

explain why fluent, confident output can still be wrong.

  • Difficulty
Start
Advanced

Impairment Testing Under IAS 36

Sw2:academic01:obj:p1:ngbb5bi5efih7j2ixqbuqekbmlsp724z5mldaj5gmjnxgvsuqpdq:6586587a

1 h

An asset carried above its recoverable amount must be written down. Building and checking a value-in-use calculation tests whether an impairment is needed and how large it is.

  • Difficulty
Start
Advanced

Auction Dynamics for a Bidder

Sw2:academic01:obj:p1:j7dtlqwq64223ool3cbjgn3hbqk3qbtitmkyjmjaxo5njbg7g7ea:efebd757

1 h

Reasoning about a competitive sale process from the buyer’s seat, where price, timing, and behaviour all interact.

  • Difficulty
Start
Beginner

Preventing Data Leakage in Finetuning

Sw2:academic01:obj:p1:ouzu4u47ak2wkdrd4fajoctvttxb4vbo3ginb3hharrqvsoamfka:a913d7f9

1 h

stop training data from resurfacing in model outputs.

  • Difficulty
Start
Advanced

Continuous Versus Occasion-Based Monitoring

Sw2:academic01:obj:p1:jfnefhqdqfncb4sroaivvxf4dj3ss52mf7sbcl6b5kolk4y4getq:23a25cee

1 h

Why permanent AI observation is harder to justify than targeted, occasion-based checks. Continuous monitoring faces a steeper proportionality bar.

  • Difficulty
Start
Intermediate

Cadence and Discipline of IR Communication

Sw2:academic01:obj:p1:46w5fwbv5al3ulo5acsrwnlxnuuuxrbtkga3r4sg4yjzguygno4q:29cf1d46

1 h

Setting a dependable rhythm of investor touchpoints and holding to it so the market learns when and how the company communicates.

  • Difficulty
Start
Beginner

Risikomanagement im Krankenhaus

Sw2:academic01:obj:p1:v54k5crkn7atbsqa6dedmfxtvkcnj5i7mtjoloqmys2flcex2sla:5f382fa8

1 h

apply the DKI-standard hospital risk framework.

  • Difficulty
Start
Advanced

The Item Characteristic Curve

Sw2:academic01:obj:p1:jiyeplzbwkol2kg2uhgpbu5bfgi7qby6bi35ttxwwe2aywjgh3pa:ea1a9977

1 h

Reading an item characteristic curve, where its position along the ability axis signals difficulty and its steepness signals discrimination. The curve is how a single item's behaviour is pictured.

  • Difficulty
Start
Beginner

Launch Teaser and Countdown Content

Sw2:academic01:obj:p1:ru67adc2fm64bjyazrg5itmhetbrdlqw4rawmiyn6sgzupztmoaq:dd014884

1 h

Building anticipation content in the run-up to a product or content drop.

  • Difficulty
Start
Beginner

What an Embedding Is

Sw2:academic01:obj:p1:t36rbakcgit2v7bstvtfkpaaznnmfhxyro6untv33dod2ltdinfq:4de862e8

1 h

An embedding represents meaning as a vector of numbers, so software can compute with words, images, or other items.

  • Difficulty
Start
Beginner

Auditing an AI System a Public Body Uses

Sw2:academic01:obj:p1:2dvbzg3krraqpcsbu4qnbjnspujyo27pkl2tl4na7qenbl55xrua:8ad0ad2e

1 h

apply audit procedures to the administration's own AI tools and their decisions.

  • Difficulty
Start
Beginner

Matter Management and Workload Steering

Sw2:academic01:obj:p1:zmyzgzuob2aypdozflbee25udsyivybxm2dvgifonlxygp2jwbqq:e3796bf8

1 h

use AI to prioritise, track, and allocate legal matters across a team.

  • Difficulty
Start
Beginner

Observability Across Services

Sw2:academic01:obj:p1:pe6t7dqu63gqm35hoblrxlkniclmidcwnsjef2nobovz665un5sq:0d381cb7

1 h

trace a request as it crosses many services.

  • Difficulty
Start
Advanced

Over-Indebtedness Testing

Sw2:academic01:obj:p1:bcpxkli3znyw4epk4dyi4luj3nkdizutrikjey6me2xcgewcuooq:e7c83ce5

1 h

Testing for over-indebtedness under the applicable standard determines whether a company is legally insolvent, a judgement with direct liability consequences.

  • Difficulty
Start
Advanced

Precedent Transaction Multiples

Sw2:academic01:obj:p1:iclgwvqv4qk5jsvtoh5a2ubvvnms65u2vtcfszsap7h4bxqhrmzq:6f29e23e

1 h

Building a set of past deals and reading the control premium implied in the prices actually paid.

  • Difficulty
Start
Beginner

What a Permissioned Ledger Is

Sw2:academic01:obj:p1:s6b7w4lebhhjxtnyqkoqbe4iypf6zdaehoby3ed75qgfrszbwhoa:94801758

1 h

A permissioned ledger admits only known validators rather than anyone. That restriction is what makes it suitable for regulated settings.

  • Difficulty
Start
Beginner

Gemeinnützigkeitsprüfung

Sw2:academic01:obj:p1:safbhb2qfekzstljbtex335ab5duqqpinck7l6xppcwxeouxr73q:1548c93a

1 h

check whether an organisation meets and keeps its charitable-status conditions.

  • Difficulty
Start
Intermediate

Accelerator Cohort and Curriculum Design

Sw2:academic01:obj:p1:m6eq2grbkaqlp6if4tz5ztd3hz5huyroky4ue4wgzgsw3xx447ja:c5ed695e

1 h

Building the cohort model and curriculum of an accelerator so that peer dynamics and content together move ventures forward.

  • Difficulty
Start
Intermediate

The AI Inventory and Use Register

Sw2:academic01:obj:p1:7dbhz75szir55dypz7skrl5ycioptxbgribdoquw6xosbywwgnyq:421852b8

1 h

An AI inventory records every AI system an organisation actually uses, the starting point for governing any of them. You cannot manage what you have not listed.

  • Difficulty
Start
Beginner

Turning Comments into Content Ideas

Sw2:academic01:obj:p1:usaosafcwtfv6hpxbyuixvz6gxoe4m2oktswqnfjz5vc5ufm3xka:cf84655f

1 h

Mining a comment section to surface the next post's topic from what the audience asks.

  • Difficulty
Start
Beginner

Specifying Data Requirements

Sw2:academic01:obj:p1:5rosewgjryki3quthmiatuoyhtpwh3ulwiunlhadgzj3qk7z23ja:eda00c10

1 h

state what data a system needs, in what quality, and from where.

  • Difficulty
Start
Beginner

How Voice and Audio Generation Works

Sw2:academic01:obj:p1:cgxmgguvzjvwnen4vbwmzwecq7e37vowl77o3iuxpbnlo7sp3q3q:854107e3

1 h

Audio models synthesise speech and sound by predicting the waveform or its features from text or other input. Understanding this clarifies what synthetic voices can and cannot do.

  • Difficulty
Start
Intermediate

Knowledge Architecture for an Organisation

Sw2:academic01:obj:p1:duijukv4bpx4jsrquc3cvz4hewotmkfkx2k4zcefmnfmpab2joaq:1359a9b1

1 h

Organisational knowledge is only useful when it can be found, trusted, and reused. Structuring it well is what turns scattered information into an asset.

  • Difficulty
Start
Advanced

Digitalising Finance Processes

Sw2:academic01:obj:p1:wgxudpkv55jthkjgcvzxwrimtnwwi3ls5u64seht6njootu2mwsa:5b2aa92b

1 h

How to redesign a finance process for automation while keeping its controls intact. Automating a weak process just makes the weakness faster.

  • Difficulty
Start
Intermediate

Customer Risk Rating

Sw2:academic01:obj:p1:asyyhld44hy7r7o3e2kaich2cfiganwxdwpnsz67rojwwlmte7va:bf4d1a0a

1 h

Assigning a customer risk rating from KYC data and explaining the drivers behind it. The rating governs how much scrutiny a relationship then receives.

  • Difficulty
Start
Beginner

Blended and Immersive Format Design

Sw2:academic01:obj:p1:3zkyhrfl2qovhlbcdgoyp7tkruq3smdcgn2no7bal6meuggzblpa:266bbb64

1 h

combine live, digital, and immersive learning.

  • Difficulty
Start
Intermediate

Performers, Narrators, and Residual Interests

Sw2:academic01:obj:p1:nzo24jabxjab457f5ftlaqca2tbtviwj535xghv5rb7szczb7vma:735f7aa7

1 h

Respecting the ongoing interests of performers and narrators whose voice or face helped train a model. Their contribution can carry residual claims even after the recording.

  • Difficulty
Start
Intermediate

Recognising Requests AI Should Not Answer

Sw2:academic01:obj:p1:7agse5dwv7jod5ykn2uiddt6ck2sch6wtxjw3c7zni55otp6s6yq:727a4fe5

1 h

Identifying enquiries such as legal, medical, financial, or safety questions that must go to a qualified human. Knowing the limit is what keeps AI assistance responsible.

  • Difficulty
Start
Advanced

Designing a Task-Specific Evaluation

Sw2:academic01:obj:p1:phqw55ofii3zgknsc3ad3m22yk2cfvjzy2dupbxzaeumwhbjxbja:04b927b6

1 h

A good evaluation set pairs representative inputs with expected results so a system's quality can be measured on the real task. This atom covers how to build one.

  • Difficulty
Start
Advanced

Insider Dealing and Trading Restrictions

Sw2:academic01:obj:p1:fvn3wluivfai6aopd4yc3wo5wk5gdouia3pllu6secuzr3iamuxa:43d3442d

1 h

Applying insider-dealing prohibitions and closed-period trading restrictions to real situations.

  • Difficulty
Start
Beginner

Preparing a Document Before Sending

Sw2:academic01:obj:p1:qkb2gosugskha6wgwps3ezgx3r2jcqsi46jur6qsupl7tqnvfaea:a114f797

1 h

remove content that should not be shared first.

  • Difficulty
Start
Beginner

Building a Waitlist and Launch List

Sw2:academic01:obj:p1:wr3qee55rd5jbqej5k3aakicygwsy3r6vb3344vnxjuwhkfxq3oq:1391adac

1 h

An audience gathered before launch turns day one into a warm start. A waitlist is both demand signal and launch fuel.

  • Difficulty
Start
Advanced

Principal Versus Agent Assessment

Sw2:academic01:obj:p1:wcpw76ymv5j6bqpg6noaznqqjxpkporgoodgcz6cd7ue6nflvd5a:b19075f1

1 h

Whether a company sells goods itself or arranges a sale for another decides gross versus net revenue. The principal-versus-agent assessment turns on who controls the good or service.

  • Difficulty
Start
Intermediate

Recognition of Prior Learning

Sw2:academic01:obj:p1:5gnfp27bjz5of6ff2j7wdziks2nrg2ruczftvtlcxpguvy3shbwa:b898e9a3

1 h

Recognition of prior learning assesses and credits competence a learner already holds, so time is not spent re-teaching what they can already demonstrate.

  • Difficulty
Start
Expert

Monetary Unit Sampling

Sw2:academic01:obj:p1:oapinqcip5rtpmmnrt6qk6dph55goyu55utvwkq3jpdpr64z6igq:5a75c372

1 h

Applying monetary-unit sampling, where selection probability is proportional to value, and interpreting its results with AI-assisted computation.

  • Difficulty
Start
Beginner

Responsible Use of AI in Research Writing

Sw2:academic01:obj:p1:wh6gvhj5t5bczy735ihrmc5quv6eabchwrtwfif33jfwfmrmzgtq:2f80d50b

1 h

keep AI assistance within integrity rules for drafting, analysis, and citation.

  • Difficulty
Start
Beginner

The Heightened Probative Force of a Deed

Sw2:academic01:obj:p1:hyib7w2nxcv73p5fcheomm4xzamumuoxf5fubnzonqaibh3mieqa:5929b82e

1 h

explain the erhöhte Beweiskraft that attaches to a publicly authenticated instrument.

  • Difficulty
Start
Advanced

Cash Flow Forecasting

Sw2:academic01:obj:p1:lf4dmfsitngauzlqrpzavl5hcbmlzgqvkxrkivrmtwpzqxbrskaq:ca0aa602

1 h

Forecasting cash across short and medium horizons, including the near-term weekly view.

  • Difficulty
Start
Advanced

Explaining a KYC Decision

Sw2:academic01:obj:p1:vzkcou77epdx2jic6gl5itbpcad3egkbh5bvole2yce3tywsj7ha:e03a1132

1 h

Making an onboarding or de-risking decision traceable and open to challenge. Explainability is a legal as much as a technical requirement.

  • Difficulty
Start
Intermediate

Amending the Statuten (Statutenaenderung)

Sw2:academic01:obj:p1:kkgzm2m5xqnqyb2s4erxqivwnyh75haahldvk43gvbx6qec7gaha:d8b96836

1 h

Running a statutory amendment through the organ decisions the law requires for it to take effect.

  • Difficulty
Start
Beginner

Formal Privacy Guarantees in Training Pipelines

Sw2:academic01:obj:p1:7lzi3avr2yr2yw6oj7byckhb2z2a6tinzpfggfolf4xcywojbwsa:a572b1af

1 h

bake a provable privacy bound into a data workflow.

  • Difficulty
Start
Intermediate

Energy-Aware Process Optimisation

Sw2:academic01:obj:p1:damlyyf4i2br6zxc7vxyz4cc7wucsjxxl5uktntiehszoqdgwevq:4e343551

1 h

Optimising a process for energy alongside output makes energy a first-class objective, not an afterthought. It is a multi-objective balance.

  • Difficulty
Start
Beginner

Reverse Charge Recognition

Sw2:academic01:obj:p1:3qpi6r6dlojdela7e4n7ptdyu7kx4lqruufzmzm6pghbvbpqbg7q:37181eee

1 h

identify transactions where the recipient owes the tax.

  • Difficulty
Start
Intermediate

What ISO/IEC 27001 Governs

Sw2:academic01:obj:p1:pd2erxaspft7vhahjofn4cqbjcebqiya5amdwtzvck6asstfsvsq:6c03e464

1 h

ISO/IEC 27001 defines an information-security management system for protecting the confidentiality, integrity, and availability of information. It is the security foundation AI governance builds on.

  • Difficulty
Start
Advanced

Healthcare Clinic Economics as a Venture

Sw2:academic01:obj:p1:mazamz5fna7qvwobkipa7frytnr7vaaw623mjpw24h4ek6y2vc7a:abcc2bd0

1 h

Running the economics of a clinic as an entrepreneurial venture, covering pricing, utilisation, staffing, and margins.

  • Difficulty
Start
Beginner

Consumer Goods Marketing with AI

Sw2:academic01:obj:p1:rgqfxrkkgd4vam366wk3pnayye6x4v6mhglidnqnxhaezn2fhnja:f3355c3d

1 h

apply AI to fast-moving consumer goods marketing (assortment, promotion, shopper insight).

  • Difficulty
Start
Beginner

Show, Do Not Tell, in a Caption

Sw2:academic01:obj:p1:a7zo5votrse3fq6pqbdmrn4esul2sevyy5ptnemrvz5edultg3oa:8a1defbc

1 h

Rewriting a flat statement into a vivid, concrete scene makes a caption land, replacing a claim with something a reader can picture.

  • Difficulty
Start
Advanced

Reading a Term Sheet Against the Cap Table

Sw2:academic01:obj:p1:4ntjbe3e55z73mdwgzspure6hi2gtlw57p7eznc5ngm5odko66hq:f8dde9c6

1 h

A term sheet's economics must be consistent with the existing ownership structure. Checking one against the cap table surfaces conflicts before signing.

  • Difficulty
Start
Beginner

Recognising Predatory Publishing

Sw2:academic01:obj:p1:bm2gl27s4m6xx2pggj3ddwhhrwovnspkx2k3smmjfv2ynbdezuea:a5df49a5

1 h

identify predatory journals and the tactics they use.

  • Difficulty
Start
Beginner

The Anmeldung to the Register

Sw2:academic01:obj:p1:oponw7ml6q6kp7tqpzssp5kro7npztsn43ruhwj65covcnkqnygq:9cc06418

1 h

prepare the signed application that accompanies the authenticated deed.

  • Difficulty
Start
Beginner

Generalised Linear Models

Sw2:academic01:obj:p1:uqdj2apfe5km64wrbym53c25zpkvcweldd6x5dnksxvqrcvaixea:7575cda3

1 h

extend regression to counts, rates, and proportions.

  • Difficulty
Start
Advanced

Full-Population Testing Instead of Sampling

Sw2:academic01:obj:p1:kjnxz7fqrzr6ftuegfyaqtt44qvw7clxeqraa334z4266w6ovxxq:143dd9d2

1 h

Testing an entire population where AI makes it feasible, and understanding what that changes in the conclusion.

  • Difficulty
Start
Advanced

AGG-Proofing a Recruiting Vendor

Sw2:academic01:obj:p1:sqpmbt6bputnjptoc774epdo5z5xmgw42rif7eatwvjvvcje5qoq:cb88c88f

1 h

Questioning a recruiting-AI supplier about its discrimination testing before deployment. Vendor due diligence moves risk off the buyer only if it is done well.

  • Difficulty
Start
Advanced

Personalauswahl Under Legal Constraint

Sw2:academic01:obj:p1:qu5bqoigmthium5fatzleal3zt5qn5kg6pmeo3ydx7s25jz545jq:fb812a5f

1 h

Running AI-supported selection within German Personalauswahl duties, balancing efficiency against legal obligation.

  • Difficulty
Start
Beginner

Locating a Clinical AI Tool Under Device and AI-Act Rules

Sw2:academic01:obj:p1:wsamq44aaq55fvh7zmt4rqtsj7xqwpg33t4tjwmyxi4s3pu25uzq:5eb40ccf

1 h

place a clinical AI tool at the overlap of medical-device and AI-Act obligations.

  • Difficulty
Start
Beginner

Re-identification Risk in Health Data

Sw2:academic01:obj:p1:q5ns3g63mgzlceko6wdokl4goamga3or5kajudq4omdugaklwz7a:abb8cdd2

1 h

assess how supposedly anonymous patients can be re-identified.

  • Difficulty
Start
Intermediate

A Consistent Voice Across Media

Sw2:academic01:obj:p1:foupa7ljfbjc3ykl7d5naoa25wamzx7sza5fjb3y3xggz33tweoa:6ff6596a

1 h

Brand voice should sound the same whether it is written, spoken, or on screen. Keeping one recognisable voice from text through audio and video holds a brand together across formats.

  • Difficulty
Start
Beginner

Separating Correlation from Cause in Sales Data

Sw2:academic01:obj:p1:md5levsp4gxbyfzsj6da7kugnngqd5xrelwqy4x2a3rbifnds6fq:cd0978d6

1 h

avoid mistaking an AI-found correlation for a driver of sales.

  • Difficulty
Start
Advanced

Detecting Suspicious Orders and Transactions

Sw2:academic01:obj:p1:axs6y2afqwxxr3twrzq6tpsa2q3zz775lobcvzi7hkqbsnul5edq:a2809783

1 h

Flagging potential market manipulation by analysing order and transaction patterns for suspicious signatures.

  • Difficulty
Start
Intermediate

Making the Why-Now Case

Sw2:academic01:obj:p1:gctzqfwmadivxz6wbjsnmepvleuxbhsymvezggojeczlcmaccnma:f7fc8e9f

1 h

Investors ask why this venture must happen now, and a strong timing case answers with shifts in tech, market, or behaviour. Why-now separates fashionable from inevitable.

  • Difficulty
Start
Expert

Real Options in Investment Decisions

Sw2:academic01:obj:p1:p327vorqew6sulzs4p55elu4yuzlctawqoi5brzx3wfg7y43sbnq:7097c84b

1 h

How to value the option to wait, expand, or abandon inside an investment case rather than treating a decision as now-or-never. Flexibility itself has quantifiable worth.

  • Difficulty
Start
Beginner

Translating Legal Documents with Terminology Control

Sw2:academic01:obj:p1:k6bcrzxeuq26uhalzgw4iykedjtbft4slr4p2g36kiyzvikmso7a:b23bf2a2

1 h

translate a legal document while preserving terms of art and register.

  • Difficulty
Start
Advanced

Data Lineage for Reported ESG Numbers

Sw2:academic01:obj:p1:j26clk33gw4oh5uyvljmn3jqb2cgmbahnewsjsg42segc4iotdsq:4bfdb9c7

1 h

Documenting the full path a figure travels from source system to disclosed number, so every transformation is visible. Clear lineage is what makes a number defensible under challenge.

  • Difficulty
Start
Advanced

Liquidity Planning in Crisis

Sw2:academic01:obj:p1:lpw4u6ehmcpkrywkz6fpxv5cp242hmo7du3m5ml7anf4yqixqi4a:dfad5719

1 h

A rolling thirteen-week cash forecast is the survival tool of a distressed company, showing exactly when cash runs out under stress.

  • Difficulty
Start
Advanced

Auditing a Model You Did Not Build

Sw2:academic01:obj:p1:merkeuhocsvatplaampwbyytwa2n5kn5uqeldhpqolxgjychkihq:f9595ba8

1 h

Tracing, testing, and locating errors in an inherited model, with AI support, without assuming its author got it right.

  • Difficulty
Start
Beginner

Online Transaction Systems

Sw2:academic01:obj:p1:giadhkyk6zyvil2pn4hb4u32ixacsg33ec2gpz672q6fnm2jd4ia:96ca42a0

1 h

build systems that record commercial transactions reliably.

  • Difficulty
Start
Advanced

Data-Driven Audit Procedures for AI Systems

Sw2:academic01:obj:p1:iirx3x5rucswo7mnikyrild36mo455mwhmds6cobinx3fyc6duaq:23178186

1 h

How to apply data-analytic procedures to test the inputs and outputs of an AI system.

  • Difficulty
Start
Intermediate

Energy Baselining and Disaggregation

Sw2:academic01:obj:p1:gkq2wy766zf742ihbytfazxxkhw4g27pp2xe4zy7mefxgu4zx6aa:163e7c33

1 h

An energy baseline plus disaggregation attributes consumption to specific machines and processes. The disaggregation step is a real signal-analysis problem.

  • Difficulty
Start
Beginner

Benchmarking Across Jurisdictions

Sw2:academic01:obj:p1:t2aimp4577ngcykqnmgemg7xuv7wuc72xlvm2xt6eztkciwjdeiq:573eef10

1 h

compare comparable spending across regions or countries and explain the outliers.

  • Difficulty
Start
Beginner

Treasury and ALM Analytics

Sw2:academic01:obj:p1:nn6cy6xkraszd5bouapublcsma73dpwnrfiqsn55zuh6l5fgou3q:9f5605f9

1 h

Outline the analytics behind asset-liability management and their supervisory sensitivity.

  • Difficulty
Start
Advanced

Stratifying a Population for Targeted Testing

Sw2:academic01:obj:p1:vahmcogkdqfsm3tcvolcevn3eeuqnexkqr5lvumyonrit3g4bt6a:95db4bc0

1 h

Splitting a population by risk and value so AI-driven testing concentrates where it matters most.

  • Difficulty
Start
Beginner

Building an AI Systems Roadmap

Sw2:academic01:obj:p1:i66tn5i7xxszmnl4dzoxm656q273yp36yd3guw3cfcqulmtxlp2q:46ea9d1b

1 h

sequence the systems work needed to make AI operational in an organisation.

  • Difficulty
Start
Advanced

The Board's Duty to Monitor AI

Sw2:academic01:obj:p1:dtmfyqa3ntvpbnvgxuo6zyo42etmzhmtkyw3cleqoqdk5t4nsska:b2ee427b

1 h

The board's duty to oversee (Ueberwachungspflicht) reaches algorithmic decision systems, not only people. Applying it to AI defines concrete monitoring obligations.

  • Difficulty
Start
Beginner

Stress Testing and Scenario Design for Market Risk

Sw2:academic01:obj:p1:6vmyzmmfiw6ylevk7y2v3nd7rxdhdymioo5p7g7rl3jrcicihajq:614c5d8f

1 h

Design stress scenarios that reveal how a portfolio behaves under strain.

  • Difficulty
Start
Intermediate

What Belongs in the Statuten

Sw2:academic01:obj:p1:ahv3mfb3uxfh4fetm6jqk7ysfvhmf7neouvumdcgaeing4blylra:85955fa3

1 h

Distinguishing the clauses that must sit in the statutes from those better kept in side agreements.

  • Difficulty
Start
Intermediate

The Manage Function

Sw2:academic01:obj:p1:x72ojmurptzxl4nxabqtqeyxhqk5mmhe5uscu4vahpx2edixg3ra:e3e0b9bc

1 h

The Manage function prioritises assessed risks and decides how to respond, allocating resources to what matters most. It is where analysis becomes action.

  • Difficulty
Start
Advanced

From Spreadsheet Logic to an Auditable Model

Sw2:academic01:obj:p1:xknn24k522wrwehcjau45vpk57ecojnoeg2wtpalj24gabi5x6fa:3d3ec607

1 h

Turning ad hoc spreadsheet logic into a documented, auditable model others can trust.

  • Difficulty
Start
Beginner

Prudential Supervision with a Risk Lens

Sw2:academic01:obj:p1:nxzpj3aed2unae4mabln75jjwpo5jd6blmye5zmeibdd54wms4pa:34651684

1 h

apply a risk-based supervisory review to a regulated institution with AI analytics.

  • Difficulty
Start
Beginner

Restructuring a Draft

Sw2:academic01:obj:p1:rtvvzjwopzoc6vw33bmpdt7qgus6fw4kzuha476z3wkfmynbeehq:476b51be

1 h

Existing text can be reorganised into a clearer order without dropping any of its content.

  • Difficulty
Start
Beginner

Preparing the Schlussbesprechung

Sw2:academic01:obj:p1:mtnvaqvqt4vbe23agz2a3rwf6eg3c35irvbsw7kycczl2o2rscua:65ede63e

1 h

ready the arguments and figures for the closing meeting.

  • Difficulty
Start
Beginner

A Content Bank for Dry Weeks

Sw2:academic01:obj:p1:bmocy4rh3nptyzt2j5e2zsdgiy3ofgbhsj3sc3umtw5rxgmpyh7a:dcf24e12

1 h

Building a reserve of evergreen posts to draw on during busy or low-inspiration periods.

  • Difficulty
Start
Beginner

What Supervisory Law Demands of an Algorithm

Sw2:academic01:obj:p1:dglyvvkd63tmkusvap4ww2m2sog5am53gzl32oafury4ehqgi67q:55e271c2

1 h

set the evidence a supervised firm must produce for an algorithmic decision.

  • Difficulty
Start
Beginner

What Legacy Modernisation Means

Sw2:academic01:obj:p1:cjafn46lwdl5w7psk74a7kb6komumd3whv5ornm7sb6nzq7e2iqq:29a6faba

1 h

frame modernisation as a spectrum from wrapping to rewriting.

  • Difficulty
Start
Beginner

Deciding What to Automate and What to Keep Manual

Sw2:academic01:obj:p1:jwyvrwdien7d2dblhu2wq5sp22gew7zmi2gp3juobrkcetenkjpq:0190d736

1 h

choose which steps stay human.

  • Difficulty
Start
Advanced

Standard Costs and Variance Analysis

Sw2:academic01:obj:p1:co4o6wb2bompizanm6kd6u2uosa77sszriv7o3mbbag5dgnxogta:fd414585

1 h

Setting standard costs and computing the price and quantity variances that explain why actual costs differ from plan. Variances turn a cost gap into an actionable diagnosis.

  • Difficulty
Start
Advanced

Sensitivity Analysis in a Model

Sw2:academic01:obj:p1:2ux5fjrh53b3dsdukfw6l2t3bfody6cxz2udu4d2mvn5ggnyy5aa:6ceeadc6

1 h

Building sensitivity tables that show how a model's outputs move with each key driver.

  • Difficulty
Start
Advanced

Key Audit Matters

Sw2:academic01:obj:p1:jaccfxwh3cpses3bblkgyjiys3c7w2ox2bd27qkshexpnalmf6pq:c6c442c8

1 h

How to identify and draft key audit matters with AI support while keeping each one specific to the entity.

  • Difficulty
Start
Beginner

Spotting and Avoiding Statistical Misuse

Sw2:academic01:obj:p1:bvnfoznxmdq7so7qf72upme7lsstnp2bdnwelfiqein2cai7luqq:30ed50be

1 h

recognise misleading statistics and keep them out of a report.

  • Difficulty
Start
Beginner

Recognition of Foreign Notarial Deeds

Sw2:academic01:obj:p1:rvvfhvpcdrebmwodapmhsgkcgkdsufvqzzqxjltw73nm62q2kwgq:23b50f10

1 h

assess when a foreign public deed is accepted for a Swiss transaction or register filing.

  • Difficulty
Start
Intermediate

Launch Sequencing

Sw2:academic01:obj:p1:iuiir76zyun3ibcwundtgvbpjkzqvf3or2wvt6pmzgtkwjmm2bsq:f5efa052

1 h

The order of launch moves shapes how much attention compounds. Sequencing concentrates momentum instead of scattering it.

  • Difficulty
Start
Beginner

Enforcing Security Policy

Sw2:academic01:obj:p1:xoacjvpfd6kpbhzpee55y5vhwg55q2yo6ylioao3ffktib3a2ukq:128ec5bb

1 h

turn a written policy into enforced technical controls.

  • Difficulty
Start
Beginner

ARIMA Models

Sw2:academic01:obj:p1:xknjr4agrznu32ihhhnudfiuecjavmnjivchegrsstngh5hng4sq:5be80a69

1 h

fit and interpret an ARIMA forecast.

  • Difficulty
Start
Advanced

Operating Model Design

Sw2:academic01:obj:p1:rqepdfgftuaazcanukdw536zrj2nxttt6plzhcx26fhh4sajctnq:46a8c7a7

1 h

Designing the operating model that makes an AI-enabled organisation actually work.

  • Difficulty
Start
Intermediate

The IOTA Hornet Layer 1 in This Product

Sw2:academic01:obj:p1:h56up2e2uepmiahyshkhc4eoj57h4qd6j755forrwkkhvhss5q7a:afbd256b

1 h

Hornet is the permissioned base ledger this product settles records on. Knowing its role frames everything built above it.

  • Difficulty
Start
Beginner

Reproducible and Auditable Pipelines

Sw2:academic01:obj:p1:hblnjrvmmaluelinb7bpcl3was4c2ra25thvbxuufjizhlyx2j2q:141aa8c3

1 h

rerun an analysis pipeline and get the same, verifiable result.

  • Difficulty
Start
Intermediate

Fairness and Sensitivity Review Panels

Sw2:academic01:obj:p1:s2lzsewwfixl2egnihobqyssyqzkeatz5gabkvx4otql4cytpika:8486ab9e

1 h

A sensitivity review panel of experts screens items for content that could offend or unfairly advantage some learners, complementing statistical bias checks.

  • Difficulty
Start
Beginner

Cross-Checking with a Second Model

Sw2:academic01:obj:p1:dqm5smxgsvsbcxwc5rzrvrg3dgodpd6dlya2tesx3lbab6x4utnq:309fba76

1 h

use another assistant to test a doubtful answer.

  • Difficulty
Start
Intermediate

Access Control for AI Systems

Sw2:academic01:obj:p1:tmvwlfmxbavhd7btdjjiyuqnfpiwn27qyoeqefkmipc7cw74vnba:debb6f95

1 h

Access control decides who may see or use models, prompts, and outputs, and under what conditions. Applied well it limits both misuse and leakage.

  • Difficulty
Start
Beginner

Risk Culture

Sw2:academic01:obj:p1:erhk5anxzmg76b2rs4v6aoanobbiouam2j33kvef32canmq7hvna:4953d3fd

1 h

explain why controls fail on behaviour rather than on technology.

  • Difficulty
Start
Expert

Auditing Intangibles and Goodwill Impairment

Sw2:academic01:obj:p1:vyozqax7ub4ajesw6ffjvwu6ihipocy3aogfsebw6cp5ztc3k4tq:34a2496b

1 h

Challenging the goodwill impairment model and its assumptions, using AI-assisted benchmarking of inputs.

  • Difficulty
Start
Advanced

Encoding Share Classes and Rights in the Statutes

Sw2:academic01:obj:p1:amg5jygokepa42766eyfvrey5n3yfvthiyqn7wpoyz63vuhnftka:dc061871

1 h

Expressing voting, dividend, and liquidation preferences correctly in the statutes so the rights hold up.

  • Difficulty
Start
Expert

Sensitivity and Scenario Analysis in a DCF

Sw2:academic01:obj:p1:uov32c4wfw6asoahf7ivzm2o47rce26nuq7sadyolnrgoykagtmq:5cdb311f

1 h

Flexing WACC and growth assumptions to produce a defensible value range rather than a single false-precision number.

  • Difficulty
Start
Beginner

Common Discrete Distributions

Sw2:academic01:obj:p1:qa4nbdrmjhtwaychuxvgg6mh4boyw47ukfrhhtmoa5lh5zkfqnvq:b83c256d

1 h

apply the binomial and Poisson distributions to counts and rare events.

  • Difficulty
Start
Beginner

Limits of Automation in Notarial Practice

Sw2:academic01:obj:p1:ry76quh3svz6cnagkpyrh4qif6acealceowp3oa36nlswaad24kq:b8abb602

1 h

identify the notarial acts (Beurkundung) that cannot be delegated to a machine.

  • Difficulty
Start
Beginner

Scheduling and Best-Time Reasoning

Sw2:academic01:obj:p1:rgkywpb335o6psqnqt6rhnng7evxuoyqsratbwjkbfa5py7svnea:7759abe9

1 h

Deciding posting cadence and timing using AI-supported reasoning about when an audience is active.

  • Difficulty
Start
Advanced

Balancing Core and Exploratory Innovation

Sw2:academic01:obj:p1:oc7xxpwayak6s6jk4zx2oft7e4rk5fffpynaxo3gv7rfysfltd7q:dcec338d

1 h

Organisations must fund reliable improvements and risky bets at once, a tension known as ambidexterity. Balancing the two shapes the future.

  • Difficulty
Start
Beginner

Supervisory Reporting

Sw2:academic01:obj:p1:vj7mowzbikoxqivoq7cehqmjpha6fdfekfm3iqturzfukrzxx3na:023c9a0b

1 h

assess the completeness and consistency of a regulated firm's supervisory returns with AI.

  • Difficulty
Start
Intermediate

Extracting and Preparing the Journal for Analysis

Sw2:academic01:obj:p1:l5gsereif54fk43ioyfcjkplxegaj7ka3w37qyrlnxqqlidmkkpa:ecbd9e1e

1 h

Pulling, validating, and structuring the full journal ledger so it is ready for AI-supported testing.

  • Difficulty
Start
Beginner

Principles of Experimental Design

Sw2:academic01:obj:p1:stnm5uflkliw7myhlbpvvsnny2hfvlpcgkenpsnje55fzshwe76q:d2ecf202

1 h

apply randomisation, replication, and control.

  • Difficulty
Start
Advanced

Segment Reporting for Steering

Sw2:academic01:obj:p1:jeodz5kgedhgyvjcv7n7vcxodvojmvai7nkt6goe2buutmrojbeq:76ca6d7a

1 h

How to build segment views that let the centre steer without drowning in detail. Good segmentation shows the shape of the business at a glance.

  • Difficulty
Start
Advanced

Making an AI System Supervision-Ready

Sw2:academic01:obj:p1:znbxbuewymo2inzchbysw7myrb3c2nj5duaixz7iwgurdyl5adpq:64c302c2

1 h

Supervision-readiness (Aufsichtsreife) is the state of documented control a supervisor expects before a system goes live. Reaching it spans architecture, evidence, and process.

  • Difficulty
Start
Beginner

Data Ownership and Stewardship

Sw2:academic01:obj:p1:6h7e4qo2gvajkx2bixlkz6tjqehyq2n3gjtqm7n3mzoezzwbav5q:f747ebed

1 h

assign accountability for each dataset.

  • Difficulty
Start
Intermediate

The State-Directed Model

Sw2:academic01:obj:p1:bozkymsd7leegqla2cet6mpx3bcgggyk2nvpd7vu2oazi2i5lpia:5acce754

1 h

Some jurisdictions govern AI through central direction over both oversight and permitted content, a model shaped by different priorities.

  • Difficulty
Start
Intermediate

Jailbreaks and Their Limits

Sw2:academic01:obj:p1:yayslxh2ka4xuwoz2aag75xesrwi53qgvkppwswu6ulfcztyxleq:2dad8794

1 h

Techniques that try to talk a model past its safety restraints, and why they keep partly working. Understanding them sets realistic expectations for what guardrails alone can hold.

  • Difficulty
Start
Advanced

Reconciling Subledgers to the General Ledger

Sw2:academic01:obj:p1:fzfov7p2qv6r3lkqt3vtzj6p35y5vesvk46vftftygsfdfcn25jq:b0f32376

1 h

Subledger totals must agree with the general ledger. Detecting, quantifying, and explaining the differences keeps the books internally consistent and audit-ready.

  • Difficulty
Start
Intermediate

Rubrics and Marking Guides

Sw2:academic01:obj:p1:k2xzop3jkqmf2nirgxldqwnznnfrregx5rwhj2mytzocqosqqepq:d8447596

1 h

Building a scoring rubric that ties each criterion to observable evidence of learning. A clear rubric makes marking consistent and fair.

  • Difficulty
Start
Beginner

Business Process Support Systems

Sw2:academic01:obj:p1:r3qbiuqpepzbudkgz3jziq6ysj3nc4agt4lqmmkdpqbm5yopxbvq:d89da193

1 h

build systems that carry a process end to end.

  • Difficulty
Start
Intermediate

Product Profitability

Sw2:academic01:obj:p1:5p6yca256wgukbju5odi5dhjed7wqbunlbf7z3jnsno4hojvr6iq:27120e06

1 h

How to analyse profitability product by product and act on the loss-making tail that destroys value. Averages hide the products that quietly drain margin.

  • Difficulty
Start
Beginner

Metadata and Data Dictionaries

Sw2:academic01:obj:p1:td4ayvapyiemqgtcyx7dsyr4kvlwvirwfbbomy5imoyzx7neskoa:b6938442

1 h

A data dictionary documents what each field in a dataset holds, and reading one is how you learn a dataset's structure before using it.

  • Difficulty
Start
Beginner

Budget Forecasting

Sw2:academic01:obj:p1:nkg4pf6xbwv7r7s4oxqgedjz7ewf4z3x3a2z6k3d7al3loldmyhq:519d8c31

1 h

build a multi-year expenditure and revenue forecast and let AI test its assumptions.

  • Difficulty
Start
Beginner

Handling Reviewer Disagreement

Sw2:academic01:obj:p1:ompjcncyhq2ls6sssefsq5yk5i4pnrac2x7vapvg57kzek2o2fia:43faa6d4

1 h

resolve split reviews, including when to seek an additional opinion.

  • Difficulty
Start
Beginner

Management Responsibility in a Regulated Firm

Sw2:academic01:obj:p1:ttp3j2mgowogmrjiwsl6jodwalbvrzhxnvbcg6e55hybhaq45yvq:1e9ca45d

1 h

Locate the accountable individuals for an AI process inside a regulated firm.

  • Difficulty
Start
Intermediate

Finance Process Optimisation

Sw2:academic01:obj:p1:xypjvgo6oyvb4qn4kguoxwn6nywtufp3xq56uexf3rp6y323gjaq:aebfc20e

1 h

How to find and remove waste in a finance process using AI-supported analysis. Small recurring inefficiencies compound across the year.

  • Difficulty
Start
Advanced

The Institutional AML Risk Assessment

Sw2:academic01:obj:p1:y5oyiww3ljhdv454vav4hy2eyijdhzm7cjngex3qoflf62htgv5q:2b844ebc

1 h

Building the firm-wide money-laundering and terrorist-financing risk assessment. This assessment shapes every AML control the firm then puts in place.

  • Difficulty
Start
Beginner

Hypothesis Testing for Model Validators

Sw2:academic01:obj:p1:mygy5tozmqnaiy3uxilzrx25rt2ddwz72c4s4rlcs6sezwl5qeja:c62fb1ed

1 h

run the hypothesis tests that validation decisions rest on.

  • Difficulty
Start
Intermediate

Keeping the Knowledge Base Fresh

Sw2:academic01:obj:p1:2z7cq6iqc2jxqukmy32mrvj4sof236ewvh4f25vge4bdwhf7xpja:7d83b1ef

1 h

A retrieval system stays useful only if its index is refreshed as source documents change over time.

  • Difficulty
Start
Intermediate

Extracting Data from a Document

Sw2:academic01:obj:p1:rpeps3aktl6sswnw6wakkwyhnhtfe2dpacq24ed2abssyyelkglq:ddf2f16f

1 h

Pulling figures, definitions, or quotations out of a source while keeping them traceable back to it. Traceability is what lets the extracted data be trusted later.

  • Difficulty
Start
Beginner

The Standardised Approach Under FRTB

Sw2:academic01:obj:p1:6cxajg27wctqaw2ulzbjk6cq7vmhhh25epsiokd4wu5ig4w7yqgq:3f8e8ca2

1 h

compute trading-book capital under the FRTB standardised approach at a working level.

  • Difficulty
Start
Beginner

AI Governance Frameworks for Financial Institutions

Sw2:academic01:obj:p1:nmdyfuhx3kprup5z5bagdyfv6brj54rtwdwacv5yno6dzb7ywxha:2119899f

1 h

Choose and stand up an AI governance framework fit for a financial institution.

  • Difficulty
Start
Beginner

Thumbnails That Earn the Click

Sw2:academic01:obj:p1:x3faha4cmcfy6vf3it3hu5mwtnaolaeopapo5hhqs6lr6ofufd5q:59fa1d66

1 h

Generating and testing thumbnails that stop a scroll and represent the content honestly.

  • Difficulty
Start
Beginner

Model Governance on the Swiss Financial Market

Sw2:academic01:obj:p1:vjyjeappzu7valq2r3u6t66vs3zumplmjx33aho24q6immh2cjrq:57b76a93

1 h

Design model governance that meets FINMA's principle-based supervisory expectations.

  • Difficulty
Start
Intermediate

Promoting a Class or Workshop

Sw2:academic01:obj:p1:vqpckxi5dqhflb4qz3glsu2ddn5bn56v5zgxbecunhbdnnfx5oaq:569c3e20

1 h

Creating content that fills seats for a course or workshop.

  • Difficulty
Start
Intermediate

Multimodal Embeddings

Sw2:academic01:obj:p1:lj4ynlzwdrk5qtwm3pusz7wrqkhncyznytmdbgcz6mczg6r5jrba:ab254588

1 h

Multimodal embeddings place text, images, and audio in one shared space so different media can be compared directly.

  • Difficulty
Start
Intermediate

Cognitive Level and Bloom Alignment

Sw2:academic01:obj:p1:aetstwri4qnc7ijaf55rdmiqlwj5qlktnxyyjodiccqnqusz3kla:2ba8bab2

1 h

An item should demand the cognitive level its outcome requires, so that recall outcomes are tested by recall items and analysis outcomes by analysis items.

  • Difficulty
Start
Advanced

Reperformance and Recalculation at Scale

Sw2:academic01:obj:p1:ho5s6pashznom7kelsaolurc2fiykudgguhawsi3chveeyn5awaq:50ccab89

1 h

Reperforming a calculation across a full population with AI and reconciling the result to the recorded figure.

  • Difficulty
Start
Beginner

AI Under FINMA Supervision

Sw2:academic01:obj:p1:b2vl5j57s52oyu7pq6lz5e3haqf2lmiwkkf4kulgxy6g2wp3q4qq:f30263c7

1 h

state what FINMA expects of AI-supported processes in a Swiss firm.

  • Difficulty
Start
Beginner

Fairness in AI-Informed Sales Evaluation

Sw2:academic01:obj:p1:cphtcrxvwvq46avyiwihardvwjuxkynbfsljebglhsnoutiej2zq:9e19b77d

1 h

judge rep performance with AI inputs while guarding against biased or gamed metrics.

  • Difficulty
Start
Intermediate

German VAT Fundamentals for AI Workflows

Sw2:academic01:obj:p1:nyyjjnk5fb3buyfx2xpky5krn5bsxvyibvp6akzto32uqzrcncbq:b0c8bd42

1 h

Value-added tax arises at defined points, is owed by defined parties, and is partly deductible as input tax. This atom sets out those fundamentals for AI-assisted work.

  • Difficulty
Start
Beginner

Building Risk Capability in a New Market

Sw2:academic01:obj:p1:kubfqspoda7lhjzg2lmcbgmjn4f2gi63ah57jgfig2qvwfloujxa:00aea110

1 h

Stand up regulated-finance risk capability where the supervisory regime differs from home.

  • Difficulty
Start
Intermediate

Issuing a Credential Against the Ledger

Sw2:academic01:obj:p1:rr5ruzw5kdbawbdwtebfhz4wlmf3glcistitd646bmjzh5qw4k5q:c710661d

1 h

Recording issuance on the ledger makes the very claim of issuance provable. The act of issuing becomes evidence, not just an assertion.

  • Difficulty
Start
Beginner

Corporate Training Design

Sw2:academic01:obj:p1:uisuyr324jatj6ga72fjktkshpsdppb3hztzjqseyt24wq5ej6qq:22f82db5

1 h

design corporate training programmes with AI support.

  • Difficulty
Start
Advanced

The Einigungsstelle for AI Disputes

Sw2:academic01:obj:p1:tldvtgu66ugncmi4a5fcsoukzoet2ug4gloeo5hh5veambrcmnxa:6f2d30e6

1 h

Navigating the conciliation body that resolves deadlocks between management and the works council over AI. It is the forum where unresolved co-determination disputes land.

  • Difficulty
Start
Intermediate

Building a Brand Kit for Colour, Font, and Voice

Sw2:academic01:obj:p1:d7t6t5uycdik5ujf5azms5qzvndhjokckz63faltbpxow3mv3ceq:1ab80f21

1 h

A brand is more than a logo. Holding colour, typography, and tone of voice constant across generated assets is what makes a set of outputs feel like one brand.

  • Difficulty
Start
Advanced

Governance for Founder-Led Companies

Sw2:academic01:obj:p1:ppl3f62twwu6qbl5ndt5gzksq6vaseq6xew4zwi4qx3lfllc22xa:8a504892

1 h

A founder-controlled company needs governance that adds discipline while keeping the founder effective. Installing the right fit keeps control and oversight in balance.

  • Difficulty
Start
Beginner

Validity, Reliability, and Rigour

Sw2:academic01:obj:p1:vivdreso4lkctseqsbjt65c2roj7zkscp4crvyxusaymn3eu6b3q:db1de326

1 h

evaluate internal, external, and construct validity and the reliability of a proposed design.

  • Difficulty
Start
Intermediate

Fairness and Non-Discrimination as Values

Sw2:academic01:obj:p1:qpivy4hpj76qdkdgcdovks3hevfi3d47hyc2xma32mxc5uizxpra:2b0663b1

1 h

Equal treatment is an ethical duty in its own right, over and above what the law requires, and stating why grounds fairness work.

  • Difficulty
Start
Advanced

Capacity and Cost Planning for AI Workloads

Sw2:academic01:obj:p1:oxt5zyd6lj6kg6dll724yyv6qdkttefc575jtbcefuzxvqoljnrq:42c932a2

1 h

An AI workload's compute and spend grow as usage grows. Forecasting them keeps a platform funded and provisioned ahead of demand.

  • Difficulty
Start
Beginner

How AI Scales Misinformation

Sw2:academic01:obj:p1:2jciz2m4dql5frokhslkayu6seq56cx33tc7vfkmgvppeoemt5wq:35d388d9

1 h

Generative tools sharply lower the cost of producing false content at volume, changing the scale of the misinformation problem.

  • Difficulty
Start
Advanced

Where Autonomy Breaks Down

Sw2:academic01:obj:p1:sil52viht7mgqku33ytinuga432ccxnjen2slaa2vjgtsgfrv4ya:4087515a

1 h

Autonomous agents fail through loops, cascading errors, and drift away from the original goal.

  • Difficulty
Start
Advanced

Programme-Level Design in Computing

Sw2:academic01:obj:p1:k7w3v4qj44tdrrarw4mtppg4xbfhknmps72sgd67yeo5yjtiyrwq:fafd786a

1 h

Designing a computing programme as a coherent whole, with courses that connect and progress, rather than an unrelated collection.

  • Difficulty
Start
Beginner

Refining a Result Through Iteration

Sw2:academic01:obj:p1:yge2qgehzphrm6le76x63czf4p2fd32okuzz7jv2fnsfntx4z4dq:bdea134e

1 h

improve an answer across several turns of correction.

  • Difficulty
Start
Advanced

Removing Bias from Test Items

Sw2:academic01:obj:p1:e5yq6jfa3m53wvsljbgboqocsejujrmhvhfqxg23laroatvu5v4a:50f7a3b5

1 h

When a fairness review confirms an item is biased, it is revised to remove the source or retired, and the decision is documented for defensibility.

  • Difficulty
Start
Intermediate

What a Restructuring Opinion Must Show

Sw2:academic01:obj:p1:er76sxg6qyun7fovdgal4svouvzyiizpam6conqoxh5kanibhola:014fb6fe

1 h

A restructuring opinion has to demonstrate specific things to be relied on, and knowing those requirements frames the whole exercise.

  • Difficulty
Start
Advanced

GDPR and revFADP Side by Side

Sw2:academic01:obj:p1:zmppw34o6nljtojmgarzi7ucflyqazbp66orbynsmfa4fdnc2soa:75dd1015

1 h

The EU's GDPR and Switzerland's revised data-protection act cover much of the same ground for AI but differ in ways that matter in practice.

  • Difficulty
Start
Advanced

The RAG Pipeline End to End

Sw2:academic01:obj:p1:5oq74buq5jx6dgxss7gb3icvqqspqayjpuayfpvbf3kseaejrzqq:090fe2e1

1 h

A RAG system ingests documents, retrieves relevant chunks, augments the prompt, and then generates a grounded answer.

  • Difficulty
Start
Beginner

Workflow Automation

Sw2:academic01:obj:p1:7y6bw56e5yep7pnvbfdv242zkt7pqfi7adjnueivvog6mmgpbusq:a26e2f45

1 h

automate the routing and handoffs in a process.

  • Difficulty
Start
Beginner

Synchronisation in Distributed Training

Sw2:academic01:obj:p1:35jglza3gnieg5j5qzvk7pkhkbmhnbnki6uz4tku2v5kblkg2r7a:35ad1211

1 h

coordinate gradients and parameters across workers.

  • Difficulty
Start
Intermediate

Curation and Filtering

Sw2:academic01:obj:p1:4jfghri75bmihvjg6z5trbtfsntsgm2xlo53gcjfqzgfoondeapa:b0d3e900

1 h

Raw collections are filtered and curated before they become training sets, and this shaping decides much of what a model learns.

  • Difficulty
Start
Intermediate

Scenario-Planning Communication Risks

Sw2:academic01:obj:p1:eonkliodm726hoptbo4lfstxqh5isgrvri24iyslpvobhs65rcsq:bf2e99fe

1 h

Using AI to pre-draft responses to the adverse events most likely to hit the company, so nothing is written from scratch mid-crisis.

  • Difficulty
Start
Intermediate

Synthetic Training Data

Sw2:academic01:obj:p1:ig6tcz5qoyxwzug5qrztjk52ltjgwvniculcecx6wayatougft4q:2d228d06

1 h

Synthetic data is generated rather than collected, and it is used when real data is scarce, sensitive, or unbalanced.

  • Difficulty
Start
Beginner

Scoping a Healthcare Compliance System

Sw2:academic01:obj:p1:jqpyheurwa67h5wegcbxkz6ub2wxd5ydmz5p3xajpvh4cgy7ggra:81fcdc04

1 h

set the boundaries of a compliance system for a care provider.

  • Difficulty
Start
Beginner

Label Noise in Clinical Outcomes

Sw2:academic01:obj:p1:7lh3y3rzj3yyctpduc7mveirxoehzhueozt445fm6vdcauiuem5a:ecceb0ad

1 h

account for imperfect ground truth from diagnoses and coding.

  • Difficulty
Start
Beginner

Documenting an AI-Assisted Analysis for Reuse

Sw2:academic01:obj:p1:e5zpddqya4kynqr6h4vs4lssijaci4a2nobm7hsfdxfj3lttn7pq:05a480ec

1 h

record prompts, models, and steps so an AI-assisted analysis can be rerun.

  • Difficulty
Start
Beginner

Assessing Legal Qualification

Sw2:academic01:obj:p1:h44fsaaorrtqfygnsoom2zsmcebpta36zzolhdenvykn42r2q6qa:e14a7693

1 h

design AI-supported assessment of legal competence.

  • Difficulty
Start
Intermediate

Automated Decisions and the Right to an Explanation

Sw2:academic01:obj:p1:edzovywktx5pdu7mt6b2piq6wi7wpkvbob2hjpecfwlhpchdoxyq:c268fa10

1 h

There is a growing expectation, and in places a legal right, that a contested automated decision can be explained to the person affected.

  • Difficulty
Start
Beginner

What Requirements Engineering Is

Sw2:academic01:obj:p1:n6vmxf7ui66t4jle2sjme5q56eculpih3sp7im3bv7dergmhwkpq:b7ef01b0

1 h

explain why disciplined requirements work decides whether a system succeeds.

  • Difficulty
Start
Advanced

Consolidation Mechanics for Steering

Sw2:academic01:obj:p1:obdnvdzb47zeqvphayygpkxkp5xz6aismettw5jcxwwrifsnesja:c730ec00

1 h

How to read a consolidation and know which figures the centre can actually steer. Consolidated numbers mix effects that are not all controllable.

  • Difficulty
Start
Advanced

Training Architecture and Rollout

Sw2:academic01:obj:p1:62haixri3yeaxhaz5nbpsqnb6jsiqh7uglblncy3kyzcuwnbjbga:0cb766cb

1 h

Planning a company-wide training architecture and the rollout that puts it into practice across an organisation.

  • Difficulty
Start
Beginner

Cross-Tabulation and Contingency Tables

Sw2:academic01:obj:p1:sq277jvrtvh2izjtpvlio7kus65yxc3ecyfbfbakzj4eywpnkzqa:c8aae6d0

1 h

summarise relationships between categorical variables.

  • Difficulty
Start
Beginner

Board-Level Model and AI Risk Reporting

Sw2:academic01:obj:p1:dgngw7ldvyquihb3xctzp7s4vasayejx2hquzyk6bs57ag4gm6ha:9bc9d9c1

1 h

Report model and AI risk to a board at the altitude it can act on.

  • Difficulty
Start
Intermediate

Communicating Confidence and Uncertainty

Sw2:academic01:obj:p1:ghgm7xmnd5ps3smdqgarw57kuxh6d4grc47bkyvkefzyqiq5afhq:d504e386

1 h

Conveying how sure a model is about an answer helps people calibrate their trust rather than over-relying on it.

  • Difficulty
Start
Beginner

Communicating a Performance Audit Result

Sw2:academic01:obj:p1:gjn46qbrqqlan5ybqmvlnyx4bo5lgcsyk46mlwrb7tu2k4zdwncq:a6f5fe7d

1 h

write the value-for-money verdict for a non-technical reader.

  • Difficulty
Start
Advanced

Governance of Sustainability Reporting

Sw2:academic01:obj:p1:tam5laxijwcf6ydrcjxqzqy4ihfpzv5vptq5obzysztzmjha5tqa:d83dace3

1 h

How to evaluate the governance and controls that sit over the sustainability reporting process.

  • Difficulty
Start
Advanced

Isolating a Fault to a Component

Sw2:academic01:obj:p1:ej2amxi2xqml6ywlwusl6zldojmg3j2caprst66l3hqq3gypov2a:bc22d06f

1 h

Beyond detecting a fault, AI can localise it to a specific subsystem or component. Isolation is what points maintenance straight to the part that needs work.

  • Difficulty
Start
Beginner

Role-Based Learning Paths

Sw2:academic01:obj:p1:lvnol2eb7nthabf7sczfbya4ytfe2xugg2nq6gllag6jf3djoabq:cdebc7d8

1 h

tailor AI learning to job families.

  • Difficulty
Start
Beginner

Choosing a Sales Motion

Sw2:academic01:obj:p1:y4ewk6x65j34fvlb3nxk3eekn46kjo2vcr7jk7pr4zaqcjcycova:1186f456

1 h

compare self-serve, inside-sales, and field-sales motions for a given offer with AI-structured reasoning.

  • Difficulty
Start
Intermediate

Employer Reputation Monitoring

Sw2:academic01:obj:p1:tmbx7so63u7st3wo3s56qikbvklrtsgz7zrvr52vipww3owa6bmq:829000cc

1 h

Tracking and responding to employer reviews and sentiment across platforms with AI.

  • Difficulty
Start
Advanced

Reading a Tax Statute with AI Support

Sw2:academic01:obj:p1:j3sp5yq4zs7lklyw7omnxwyxmzmkmxoedqlb6cda6pap54d6ksdq:d313c453

1 h

How to navigate a Steuergesetz with AI help to find the provision that governs a question, while preserving the exact statutory wording that decides the answer.

  • Difficulty
Start
Advanced

Tuning Controllers with AI

Sw2:academic01:obj:p1:2jvhuqxdlyibm5kv7kb33jvz3ayqmtnmqp2nlvwsz6663hdrxqia:d74d93d0

1 h

AI can propose PID and loop tuning settings, but the proposals must be checked against stability margins before use. This blends automated suggestion with control-theory verification.

  • Difficulty
Start
Beginner

A Repeatable Fact-Checking Routine

Sw2:academic01:obj:p1:cettn72l7kv5hjs5vcfjndsthqbzshddgjrirhp4r33jdwrlclaa:2613b69b

1 h

apply a consistent check to output that matters.

  • Difficulty
Start
Beginner

Proofreading and Consistency Passes

Sw2:academic01:obj:p1:ivx3jvnry5dl6xbteuixfgh4zkdr4w53xs5ileibdakrlqllsr7a:efb522a1

1 h

A consistency pass catches spelling, grammar, and style issues across a whole document, not just a single passage.

  • Difficulty
Start
Intermediate

On-Device and Edge Models

Sw2:academic01:obj:p1:alkia4bcndqgbb4stnmhsezlgxqe4eeh6dmu5exyaw347wz634qa:2555861e

1 h

Small models can run directly on phones and edge devices, trading raw capability for privacy and offline use.

  • Difficulty
Start
Beginner

Study-Aid Carousels and Summaries

Sw2:academic01:obj:p1:rnrkg3v3bg5kxbqf46vojsawhr5scigxu6s6zqxq4gxzntlubkfa:73955d1a

1 h

Turning learning material into swipeable study summaries an audience can revisit.

  • Difficulty
Start
Beginner

Structuring Ambiguous Facts for a Tax Question

Sw2:academic01:obj:p1:a65skl2h6zlkikhmlbcdr4jqy7iq4mybuelge35scjvn2f6fecna:9da0a233

1 h

turn a messy narrative into the ordered facts a subsumption needs.

  • Difficulty
Start
Beginner

Steuerwirkungsrechnung: Quantifying the Tax Effect

Sw2:academic01:obj:p1:o5bndcqd4jckykis3ixq5pq5sqbi3jlymeojxc3w4zulezuno66a:e6ee6843

1 h

compute the cash and rate impact of a planned action.

  • Difficulty
Start
Beginner

Management Enablement for AI

Sw2:academic01:obj:p1:pxp37e3jo275hobw2ztuwrdpoo47dna2iijnizxse326wdhvolsq:9339fa73

1 h

enable managers to lead AI adoption.

  • Difficulty
Start
Advanced

Calibrating a Machine Scorer Against Humans

Sw2:academic01:obj:p1:pfucdtzc4z3egy4auhlbxrt6cqf4m4fgrniasabz7agehheh475a:1388e5ef

1 h

A machine scorer is trusted only after its agreement with human raters is measured and tuned, using agreement statistics to decide whether it is fit for use.

  • Difficulty
Start
Intermediate

Logging AI Use for Traceability

Sw2:academic01:obj:p1:qr6tq3p7dr6hhwos5q2fy7h6iwhhyd4gmjggkm5s35u637pdyn6a:504765e8

1 h

Deciding what to log, inputs, versions, and outputs, lets a past AI-assisted decision be reconstructed later. Good logs are the raw material of traceability.

  • Difficulty
Start
Advanced

Strategic Controlling

Sw2:academic01:obj:p1:z7tmlwnfi6qpuzzqfxlsv3rb7tsfc76gazv3r27tkhvkkhjnpx6a:a84e9480

1 h

How to connect strategy to measurable steering over a multi-year horizon. Strategy that is not made measurable rarely gets executed.

  • Difficulty
Start
Beginner

Attribution Across Marketing and Sales

Sw2:academic01:obj:p1:eeoz4v6na7sncie3wjmuby266qb5tsxnkimokkscmockp2kjh43a:e0ba219c

1 h

read AI-assisted attribution of a closed deal across touchpoints, and its limits.

  • Difficulty
Start
Intermediate

Fraud Patterns and Red Flags

Sw2:academic01:obj:p1:he6qpsy4lu5b6ns4j2zdvigu4aihq2yttuivszzt5szbwhb24ztq:f75031df

1 h

The recurring fraud schemes and the data red flags that give them away.

  • Difficulty
Start
Beginner

Selecting a Legal AI Vendor

Sw2:academic01:obj:p1:cmkgm46gwl3nyl7u2zlbhanppenxsarfbayyoeevppao4wxio4rq:80f44a90

1 h

evaluate a legal AI vendor against confidentiality terms, accuracy claims, and training-data use.

  • Difficulty
Start
Advanced

Measuring Learning Gain

Sw2:academic01:obj:p1:kcqdhz7542gqidc4x7lubkz53t44paznj6xpw4qixfocacn37dsa:fb41e8de

1 h

Normalised gain expresses how much of the available improvement a learner captured between a pre-test and a post-test, correcting for different starting points.

  • Difficulty
Start
Advanced

Data Models for Steering

Sw2:academic01:obj:p1:xcljzv5yshqgvaeu42txc6lxaln2xvylbitw3hlwo3yjnxr4pwva:b332b676

1 h

How to design a data model that makes the numbers steerable and consistent across the organisation. The model shape decides which questions can even be answered.

  • Difficulty
Start
Advanced

Leistungs- und Verhaltenskontrolle

Sw2:academic01:obj:p1:wu2p57fepz5jcw7nz6e37fyr4zohblwytfdv4qhyn4xkzcniengq:a6d0a335

1 h

Keeping AI-based monitoring within the legal limits on performance and conduct control.

  • Difficulty
Start
Advanced

Data Room Scope and Red Flags

Sw2:academic01:obj:p1:maeec3jvoqof524p6lysbsyzkqjcuqpad7wnnz6ykhccnbznrq2q:42e74d63

1 h

A data room organises the documents reviewed in due diligence, where legal red flags first surface. Setting one up and spotting the flags protects a transaction.

  • Difficulty
Start
Intermediate

Recruiting Funnel Analytics

Sw2:academic01:obj:p1:xo4myrq7svdshezdiwqp2kwmzp2f7ntn34jk7ocztgcalcck5lea:4915c783

1 h

Measuring drop-off and time-to-hire across the recruiting funnel with AI to find where candidates are lost.

  • Difficulty
Start
Beginner

Attribution and Counterfactual Reasoning

Sw2:academic01:obj:p1:6ydbpbmqvdg42e73lv3q6objbhamag6mqs24u4jnzcj5lfouhexq:295338cc

1 h

reason about what would have happened without the programme.

  • Difficulty
Start
Advanced

Verifying a Learned Control Policy Before Deployment

Sw2:academic01:obj:p1:lgk6yz7sz6etbuun46egmxchptl5qyupbdz5dbbzjezigs6de6za:416c7778

1 h

A learned control policy must clear a battery of offline tests before it is ever allowed to move a machine. Defining that test set is the gate between simulation and reality.

  • Difficulty
Start
Beginner

Sample Size and Power for a Trial

Sw2:academic01:obj:p1:zihfz4pj5e6724n7rifky5ygu3bz3v6x2h3fyr2zgm4zyrq63znq:e74a9dcf

1 h

reason about the numbers needed to detect a clinically meaningful effect.

  • Difficulty
Start
Intermediate

The Whistleblower Case Workflow

Sw2:academic01:obj:p1:tmn6edqzefrlunhfegcpm3eg4zm6v26clceajbwdnqu7zdatluxa:9e5c2a17

1 h

Running a whistleblower case through the statutory steps to closure. Each step has a legal shape the case must follow.

  • Difficulty
Start
Intermediate

Hard Law, Soft Law, and Standards

Sw2:academic01:obj:p1:agn2djtci2f7lu4beszlkod2y47iudzsqj7fai6dy77qcjrdv77a:195b2445

1 h

Binding regulation, non-binding principles, and voluntary standards each carry different force, and confusing them leads to either over- or under-compliance. Knowing which is which sets the right response.

  • Difficulty
Start
Beginner

Technical Proposal Support in Complex Deals

Sw2:academic01:obj:p1:ygozhwjgjm7oygspbci4hrd47ltz53gbuwy5nymyr6ivjzsft2eq:4884ef13

1 h

draft and structure a complex technical proposal with AI while keeping engineering claims verified.

  • Difficulty
Start
Beginner

The Supervisory Review Process at a Concept Level

Sw2:academic01:obj:p1:dgxp6d2df76otdztvqrks3o6fiavarob4odjsplyjchhrdg27pqq:8094c95a

1 h

Outline how a supervisor forms and communicates a view on an institution's risk and capital.

  • Difficulty
Start
Beginner

Applying BAIT to an AI-Supported Process

Sw2:academic01:obj:p1:wribbpednyrurqwuby54gbpmzrwufczow27qyj2qgxufoca75x4a:ffbe02ff

1 h

Test an AI deployment against BAIT's requirements on management, access, and operations.

  • Difficulty
Start
Advanced

Drafting the Long-Form Report

Sw2:academic01:obj:p1:pfjul5rlocy2fwtlutcjfp2ipkmy746czugp3oh2zuobwufzwarq:e3f30e6f

1 h

How to use AI to draft the Prüfungsbericht long-form report while keeping it under strict human review.

  • Difficulty
Start
Beginner

Valuing a Clinic or Care Business

Sw2:academic01:obj:p1:rwbvqkl2qimw6v7hq3wlr3lahjo3esi6cctivpe7wse7rmwqpima:56d246ee

1 h

value a care provider on its case mix, cost structure, and revenue logic.

  • Difficulty
Start
Beginner

Field Record-Keeping and Logs

Sw2:academic01:obj:p1:6igusnhaxhikjiquwzslrcurvlxrvz6cc4g3qjfuzirajxukodjq:c8b483c1

1 h

Consistent activity, inventory, and inspection logs can be built from informal spoken or typed input, keeping records reliable.

  • Difficulty
Start
Beginner

State Intervention in the Financial Sector

Sw2:academic01:obj:p1:thhyzrizygfbohohtjpxnvb25ddqvij7g4jgs2lced45zfijb6ha:a56ed586

1 h

Describe when and how the state intervenes in a distressed institution.

  • Difficulty
Start
Beginner

What Models Cannot Do

Sw2:academic01:obj:p1:y5capumk2ckbcccgl4qkj4fvjmjwdc2exhpw2ssxv5iw6gypt6ma:dc709e06

1 h

Some tasks lie outside what today's models can do at all, such as accessing private data they were never given or knowing events after training. Recognising the hard limits avoids impossible expectations.

  • Difficulty
Start
Advanced

Forensic Data Analysis

Sw2:academic01:obj:p1:enpzsaa666k34dbdylxssbfqcrbds5er73t54hngu3hyakgreogq:d39aabdf

1 h

How to run a forensic examination of financial data with AI while keeping the evidence sound.

  • Difficulty
Start
Beginner

Reading a Compliance Verdict as a Supervisor

Sw2:academic01:obj:p1:a7h46tn357g46hfh7guimm2qog7cug63vpyt3bxvasgx6bi5vbrq:851b5cc8

1 h

Interrogate an automated verdict on thresholds, error budgets, and human entry points.

  • Difficulty
Start
Beginner

A Repeatable Weekly Content Sprint

Sw2:academic01:obj:p1:m574iid2mbqd7qirvqxzygtxuj5du7ok4xs22pkv6jhbryxrkwxa:47ec8d8d

1 h

Designing a personal weekly production routine that a creator can sustain over the long run.

  • Difficulty
Start
Beginner

Legal Knowledge Management and Precedent Banks

Sw2:academic01:obj:p1:ef5eohywnokw3harbf3q7gbfp4uzankg27jwaf4cjupptngufh7q:84038c9c

1 h

structure a firm's know-how so AI can retrieve reusable clauses, memos, and precedents.

  • Difficulty
Start
Advanced

Sampling Versus Full-Population Testing

Sw2:academic01:obj:p1:y5wtgovshsht27clknxt66prjrp2w3efbv5pav6nypojmxlycusa:7b841039

1 h

Choosing between a statistical sample and full-population testing for a given control, and justifying the choice. The decision trades statistical rigour against coverage and cost.

  • Difficulty
Start
Beginner

Transactions Requiring Public Authentication

Sw2:academic01:obj:p1:pq7ayggrn65nmbdafv5x7b3gqh5kv7r52efy7jidaljhybylrw7q:8cc55b2c

1 h

enumerate the Swiss legal acts that are valid only in the form of a public deed.

  • Difficulty
Start
Advanced

Prüfung nach § 53 Haushaltsgrundsätzegesetz

Sw2:academic01:obj:p1:4jtajufzbzfypkreaalgjpjb7gj3dnciwzjg5c53ysuyi5ljzv5q:6aa993fb

1 h

How § 53 HGrG extends the audit scope for public-interest entities, adding tests of regularity and management alongside the financial statements.

  • Difficulty
Start
Beginner

Protecting Embeddings and Vector Stores

Sw2:academic01:obj:p1:ljvewir3txmjqonqztazvlplnyvw44jnsxeuaqr3ccwj4yejbsuq:76f97649

1 h

recognise that embeddings can leak source content and secure them accordingly.

  • Difficulty
Start
Intermediate

Swiss Versus EU Method

Sw2:academic01:obj:p1:fikopcyps6lisrxzjvj276fgm6ysamypat4ycw46llqs6gfkxhya:86f9af54

1 h

The Swiss sector-by-sector method and the EU's single horizontal, risk-based act represent two contrasting ways to govern AI.

  • Difficulty
Start
Beginner

Outsourcing Under Supervisory Law

Sw2:academic01:obj:p1:kktenrlq54kojiab526owqpecrlttzkvyzslenj3nyqnrsexeeuq:2b5bf7f5

1 h

meet the supervisory requirements that attach to outsourcing a model service.

  • Difficulty
Start
Beginner

Customer-Controlled Keys

Sw2:academic01:obj:p1:cx5nbk3tyj5sinftf3xdxc3uuzuwwxhdennnjkyafgf7zel2wl6q:e9449a1a

1 h

keep a customer holding their own encryption keys in a cloud AI service.

  • Difficulty
Start
Advanced

Media and Print Accounting

Sw2:academic01:obj:p1:dvcaqg6ybqyni63we2pbbwf6vlcku6hzzge36yshud5ay7atxzxq:25a28e67

1 h

Accounting for media and print businesses, where contract manufacturing, capacity utilisation, and structural change shape the numbers. Fixed-cost-heavy, declining operations drive the reporting issues.

  • Difficulty
Start
Advanced

Cross-Border Entity Setup for Finance

Sw2:academic01:obj:p1:vlc2erqa4ngijk5nyzqxbxpke5n5p2yodhgd2u2jb3udpg2yifgq:3cc28ac5

1 h

Structuring cross-border entities to serve a financing purpose, adding jurisdiction, treaty, and tax layers to the design.

  • Difficulty
Start
Advanced

Algorithmic Recruiting and the AGG

Sw2:academic01:obj:p1:x3zjfoveawz4blwycihgaxkdm53ejslqz2t4ifowm37wwryej5ea:1e25893d

1 h

Where automated candidate selection creates exposure under Germany's General Equal Treatment Act. Recruiting is one of the highest-risk HR uses of AI.

  • Difficulty
Start
Advanced

Measuring Ecosystem Health

Sw2:academic01:obj:p1:f6bcq2pwsfnhwlozprevdcpshkol6ckh27twqbkmjcjn6mzto3pq:153e1d9d

1 h

Judging whether a startup ecosystem is genuinely thriving, using indicators of activity, capital, talent, and outcomes.

  • Difficulty
Start
Beginner

Recommendation Systems

Sw2:academic01:obj:p1:rdm6475qqtalropucm2vmyafynitmmqoc6v6ubn7xgnplavi7nfq:e092bd4a

1 h

suggest relevant items to a user and reason about the trade-offs of doing so.

  • Difficulty
Start
Intermediate

Refining a Pitch with AI Feedback

Sw2:academic01:obj:p1:gzfkc3x6b7l3aqrveiufe5nyugjqvmtrzyku72smhhbwepeby7ta:55256de9

1 h

A model can act as a tireless first critic, flagging weak logic and vague claims before a real audience does. The skill is judging which suggestions to take.

  • Difficulty
Start
Intermediate

Keeping Meaning in High-Stakes Text

Sw2:academic01:obj:p1:4hkwmg6uuekp2agyhafxf2he5zv2dvuixihzec4wmpieylkfrblq:1c4f5037

1 h

In medical, legal, and safety content a mistranslation can cause real harm. Extra verification steps protect meaning where the stakes are highest.

  • Difficulty
Start
Beginner

Reading a Clinical Dataset

Sw2:academic01:obj:p1:wxvmwptf4y7qdtjbe4fl443icxcmxo3sjhanwru4mbpidbvvcw3q:f9537b7e

1 h

interpret variables, coding, and missingness patterns in a patient dataset.

  • Difficulty
Start
Beginner

When a Task Actually Needs AI

Sw2:academic01:obj:p1:4ubfpns6glj7cgsh6vwnzao26luhteq7fcvwl5f6oxin7uo46n3a:cbb22f92

1 h

Many jobs labelled AI are ordinary rule-based automation, and many are better solved without AI at all. Telling the two apart saves money and avoids over-engineering.

  • Difficulty
Start
Beginner

Reading a Handelsregister Extract

Sw2:academic01:obj:p1:ujgoycunqrm3y35y74s4cpsvz3ocppzeqmfr75wxplu6qu2yx7qa:d9a71c32

1 h

interpret a commercial-register extract to confirm a company's organs, capital, and signatory powers.

  • Difficulty
Start
Beginner

Permissioned Ledgers for Audit Trails

Sw2:academic01:obj:p1:avpfrlfltxxxnyb5ciktnbl5rgelda6llqrfwtbc6pyv2dtn3mna:330b7007

1 h

record AI decisions on a controlled, verifiable ledger.

  • Difficulty
Start
Beginner

Joint, Marginal, and Conditional Probability

Sw2:academic01:obj:p1:vtx4vvpvyqrhzd64mgim6riqkgbogx6pdqfdgf5lunmkxdf5y3sq:0296ce8d

1 h

reason about combined and dependent events.

  • Difficulty
Start
Beginner

Cross-Functional Work Between Marketing and Sales

Sw2:academic01:obj:p1:nch4jzjcbs3ygtqbuz6p6gtojhdq2sjyngbjaquqs2kxbnpr4aca:17c1785d

1 h

use AI to align marketing and sales on shared definitions, leads, and messaging.

  • Difficulty
Start
Intermediate

Acceptance and Sign-Off of an Industrial AI System

Sw2:academic01:obj:p1:4wy3yvcn4tdvuuf4k6wlxayymhelrkq5iwfjlgsdormzgctjdtqq:4edb3b5b

1 h

Signing off an AI-enabled machine requires defined evidence that it meets its requirements. Deciding what evidence suffices carries real accountability.

  • Difficulty
Start
Intermediate

Foundation Models

Sw2:academic01:obj:p1:rvvchiirmsliipsy6dsqe2ydtqnys4yxjl6murtfhp75gj33ykaa:41f3dcd5

1 h

A foundation model is a single large model, pretrained broadly, that can be adapted to many downstream tasks. This one-to-many pattern is why a handful of base models power so much of AI.

  • Difficulty
Start
Beginner

Next-Best-Action Recommendations

Sw2:academic01:obj:p1:goyljwx36kucj5mdrnzzgnxhfyyhmwhru5zqyvj3lmg6wh33pbsq:619410a9

1 h

read an AI next-step suggestion for an account and decide whether to follow it.

  • Difficulty
Start
Advanced

Consent as a Weak Basis in Employment

Sw2:academic01:obj:p1:ygdaekea2ga5bwkjrr76abkxfgdpcqn4h4qgdenorvtkl2y7r5na:c787f952

1 h

Why employee consent rarely legitimises AI processing, given the imbalance of power between employer and worker. Relying on consent here is usually a mistake.

  • Difficulty
Start
Intermediate

Scope and Context of an AI Management System

Sw2:academic01:obj:p1:zcabtyjeqveuajpwhpua5vpv7rp5bjka5efliyu4igryhxzhzpvq:0b216f83

1 h

Defining scope and organisational context sets the boundaries of an AI management system: which systems, units, and stakeholders it covers. These clauses anchor everything that follows.

  • Difficulty
Start
Beginner

Using AI to Generate Scenarios

Sw2:academic01:obj:p1:3am3d3dlifzq2zn6f5q4a376wqbotsgwg2nqzzem5fdhw4bt7ozq:7458adb4

1 h

use a model to propose stress scenarios and then check them for coherence.

  • Difficulty
Start
Intermediate

Cost Structure and Unit Economics

Sw2:academic01:obj:p1:3we6t2wofruryqdzgdjosmhsukbigzcga4gxsnwig4bxfhu7tvsq:434ee525

1 h

Unit economics ask whether one sale earns more than it costs to deliver, and cost structure shows what drives the totals. The arithmetic decides survival.

  • Difficulty
Start
Intermediate

Post-Investment Review

Sw2:academic01:obj:p1:j7atcqmuqx6ma2kf4hbmvvwl7gli245u7ayhvwve3z75s45np7yq:baf5b2d8

1 h

How to compare realised results against what an investment promised and feed the lesson into the next decision. Without this loop the same optimism repeats.

  • Difficulty
Start
Intermediate

Tailoring the Story to the Audience

Sw2:academic01:obj:p1:lsz2kpimcjbk2n5gkyrmragyflvgdg2fiuk7pa7co24tao4nejrq:f14fb7ab

1 h

How to reshape one narrative for customers, partners, and investors in turn, keeping the core intact while the emphasis shifts.

  • Difficulty
Start
Intermediate

Board Dashboards and Their Limits

Sw2:academic01:obj:p1:3cw6s3tjbmy4tge57cles2pyt723qljidttfy5lindmv4jvrngta:62968865

1 h

Board dashboards compress complex data into a few numbers, which can hide as much as they show. Reading them critically avoids being misled.

  • Difficulty
Start
Beginner

Defending Against Adversarial ML

Sw2:academic01:obj:p1:ksikdsxwvn5t7xevjudi2onqeczxk6nsoxbmoygkymdk4pmsf4ka:458c664f

1 h

apply layered defences to the attacks above.

  • Difficulty
Start
Beginner

Proposal Logic: Excellence, Impact, Implementation

Sw2:academic01:obj:p1:4zdiey33gihr67o7o4qcqjiypury2q6jldudf7ea5qaupd6p6mka:217029db

1 h

structure a proposal around the three pillars evaluators score.

  • Difficulty
Start
Advanced

Time Synchronisation Across Machines

Sw2:academic01:obj:p1:575zqvfskubumsazniqrsmmo5cnfh4eqxv5cqye2fbyuqbp5e3ma:66aaf129

1 h

When features combine data from several machines, misaligned timestamps silently corrupt them. Aligning clocks and time bases keeps multi-source AI features valid.

  • Difficulty
Start
Beginner

Working Offline and Syncing Later

Sw2:academic01:obj:p1:4niivran2qlcjxdm5sj4idfhbo5jx3li5owduekzdciv75vqxunq:357b55d7

1 h

Field and remote work often happens without connectivity, so captured entries must reconcile cleanly with the system of record once the device is back online.

  • Difficulty
Start
Beginner

Seeding and Managing a Comment Section

Sw2:academic01:obj:p1:2cs2e4zmo56xqjvktb7hkbeashceho6sxehwznewgr3oipze72aq:7a8e5eee

1 h

Preparing pinned comments and prompts that spark and steer discussion under a post.

  • Difficulty
Start
Advanced

Structuring Holding, IP, and Operating Entities

Sw2:academic01:obj:p1:65zzktbv37wwbjqipponzhn2nupcbpsrpj2yoshkcmwvgfi2u5jq:66120c47

1 h

Separating a holding, an IP entity, and an operating company to concentrate control and isolate risk across the group.

  • Difficulty
Start
Advanced

Validating an Audit Analytics Routine

Sw2:academic01:obj:p1:olvpgu7uz7jl5a7w3lf3nygzzggao273eyd5cynt6gd6l3lpz7bq:02acb24f

1 h

How to test that an analytic routine actually does what it claims before any conclusion rests on it.

  • Difficulty
Start
Advanced

Cash Flow Statement Analysis

Sw2:academic01:obj:p1:nhb5fujamjyqi5a6apcwoy7ge7zrqk244qwdjw7snc6b7xl2tvea:647d1eff

1 h

Reading the cash flow statement as a check on earnings quality, testing whether reported profit is backed by cash generation. Divergence between profit and operating cash is an early warning sign.

  • Difficulty
Start
Beginner

Extracting Values into Named Fields

Sw2:academic01:obj:p1:tfuqkzpdgfqubuldcod5nmpijrcqs3e4lqqzf2uj3p2qmquuufqa:7c75f39d

1 h

pull specific data points into labelled slots.

  • Difficulty
Start
Beginner

Sound Effects and Foley with AI

Sw2:academic01:obj:p1:6e4zptrgb5q6t5zepq4kazp2hjbk6gvhxjuntt3e5nc437llhfpq:65deaf5c

1 h

Sound effects can be generated to match on-screen or narrated action, adding realism to a piece.

  • Difficulty
Start
Advanced

Provisions and Contingencies Under IAS 37

Sw2:academic01:obj:p1:wfghhuxll7alpqigvxf3d5oob3vnmtkzsejdbf5sifjmregujinq:46befed7

1 h

Some obligations are recognised as provisions while others are only disclosed. Recognising, measuring, and disclosing provisions and contingent items draws that line under IAS 37.

  • Difficulty
Start
Beginner

TRIM-Style Supervisory Expectations

Sw2:academic01:obj:p1:2fjrxvn3jhom6645aqsotfuohnlmiqnudpuxnro4oazgxjrvog4q:3cec22a9

1 h

meet targeted-review-of-internal-models expectations.

  • Difficulty
Start
Advanced

Notifying Affected People and Regulators

Sw2:academic01:obj:p1:yueozrtagz3ds4rxmu76l37ecmj6fijvn37pmh2hlr2q736o7loa:b2a2c0d7

1 h

After a failure, deciding who must be told, and how quickly, is both a legal duty and a matter of trust. Getting the notification right limits legal and reputational fallout.

  • Difficulty
Start
Advanced

Runtime Guardrail Checks

Sw2:academic01:obj:p1:xkjqqaixnrrimabveagzww5u7oaqhg7zxtec73ue7w5rkpepvb6a:786d4066

1 h

Screening input and output against safety rules while a feature runs, not just in testing. Runtime checks stop unsafe content at the moment it would reach a user.

  • Difficulty
Start
Advanced

Documenting the Planning Decisions Defensibly

Sw2:academic01:obj:p1:7sawbxn6k63wsnpgda56bxcc7ik4ha4m4hnwahn57t422vca6iqq:6b5ba5f8

1 h

Recording why the audit plan focused where it did, in a form that inspectors and reviewers will accept.

  • Difficulty
Start
Intermediate

Email Sequences for a Creator Audience

Sw2:academic01:obj:p1:omi6hmb6yelbkxdekzaedrxwkcka7uadamtoac7cmqhhh3hq342a:e9b4d7b6

1 h

Drafting a welcome and nurture email sequence that onboards new subscribers over time.

  • Difficulty
Start
Beginner

Quasi-Experiments When Randomisation Is Impossible

Sw2:academic01:obj:p1:dkp6vclswnkihwcizwqnsntpfxdxzurxhei7ja3wdfc3wfswouva:4007a7f7

1 h

design credible studies without full control.

  • Difficulty
Start
Advanced

Choosing People Metrics That Steer

Sw2:academic01:obj:p1:oymal6dwlhd2boogz3wdoqeh4wzmtbinzmhr43ottc2mwid47aha:cfe3aff2

1 h

Selecting workforce metrics that actually steer behaviour rather than merely report on it.

  • Difficulty
Start
Beginner

Bed Occupancy and Capacity Steering

Sw2:academic01:obj:p1:5vjazsdcgvqvdcubpqhfar3ltzu3fmsfdjmvsyguppmwzlnujzfa:3786db6e

1 h

manage occupancy and throughput as steering levers.

  • Difficulty
Start
Beginner

Industrial IoT and AI

Sw2:academic01:obj:p1:blwtaxicv3hmssougifrkgnrj5cy7wc6frcbq6octwvfddwk4eka:3cb56fad

1 h

Industrial IoT pipelines carry sensor and machine data to AI models running at the edge or in the cloud. Knowing this flow frames where compute and latency choices are made.

  • Difficulty
Start
Beginner

SQL for Analysts

Sw2:academic01:obj:p1:sfgk5raah42sjzp4oje5j7ni6maaoi2i6m2klsy6nrsm4ge3bh6a:1f4c6d98

1 h

query a database to answer business questions.

  • Difficulty
Start
Advanced

Choosing a Forecasting Baseline

Sw2:academic01:obj:p1:lw2ycnlstnegzp2slwqnn3yhwl3omhzbb7wp2sp6gbn5b2b2ub3a:c18827ed

1 h

Picking and defending a naive baseline so any model's added value becomes measurable.

  • Difficulty
Start
Intermediate

Consent for Synthetic Image and Video

Sw2:academic01:obj:p1:secxgltrdwudsj2dcxa2wnt4zhe3fo5lpb7bt6bunb47xhhto55a:d4f88fb4

1 h

Applying consent to the AI use of a person's face and body likeness in images and video. Visual likeness raises broader permission questions than voice alone.

  • Difficulty
Start
Beginner

Salami Slicing and Duplicate Publication

Sw2:academic01:obj:p1:fvmyjkfmcakg7mn5abzuwshqieooy7qcfkdawvhpupo64haqbipq:1e8acc0f

1 h

recognise and avoid redundant and duplicate publication.

  • Difficulty
Start
Advanced

Value Trade-offs

Sw2:academic01:obj:p1:645fq7oidxjkhnxaoqvwdzmgmyijrwkt2vbm4e3uehc4hpgvnslq:fd6a856e

1 h

Two genuine goods, such as privacy and safety, often pull in opposite directions, and reasoning clearly through the tension avoids false certainty.

  • Difficulty
Start
Beginner

Validating a Value-at-Risk Model

Sw2:academic01:obj:p1:5waacnib7yso63txyl2r5zql5qlbfm5xgmolkzbg5vsi736xp6aq:747e0b42

1 h

validate historical, parametric, and Monte Carlo VaR and its exceptions.

  • Difficulty
Start
Beginner

Operational Health-Data Protection

Sw2:academic01:obj:p1:4aecxgw4id2xfnyjqncjhkgelfyglql6ok4sq2ymzgbi6wgbafkq:19b3fc63

1 h

apply health-data protection duties in day-to-day care operations.

  • Difficulty
Start
Intermediate

Preparing for an External Audit

Sw2:academic01:obj:p1:3l5okclbexqemsvmwcfqymfkyjscsx5ejgo7exhfu3n4umlyt4rq:b472da14

1 h

An external audit asks for specific evidence, so preparation means assembling policies, records, and results before the auditor arrives. Readiness turns an audit from ordeal into confirmation.

  • Difficulty
Start
Intermediate

Kill-or-Pursue Decisions

Sw2:academic01:obj:p1:7ybbikszj2ojrbhk7nn65lgnihijndqbrlg7kxv6mqcqkus5cjpa:b9b5437d

1 h

At each gate a founder must weigh evidence against sunk cost and decide to continue, pivot, or stop. The judgment is high-stakes and easy to dodge.

  • Difficulty
Start
Advanced

Skills Taxonomy and Ontology

Sw2:academic01:obj:p1:gijijza2dydoj6nzjvswj7xc5xpoafrr74t52vrwvamuypdseyda:a43c385d

1 h

Creating a shared, structured vocabulary of skills so the whole organisation speaks one language.

  • Difficulty
Start
Intermediate

ISO 26000 and Social Responsibility

Sw2:academic01:obj:p1:dm74eu7t3hi3xb3r3oojardnybedja4zgwpkuvcwl5j26jrwnxtq:9cf8a667

1 h

ISO 26000 offers guidance on social responsibility, covering human rights, fair practice, and community impact. It frames why responsible AI is part of wider corporate responsibility.

  • Difficulty
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Beginner

Identifying the Taxable Event

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1 h

pinpoint which act or state of affairs triggers the tax and when.

  • Difficulty
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Beginner

Rule-Based Systems Versus Learning from Data

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1 h

AI can be built by writing explicit rules by hand or by letting a system infer patterns from data. This split is the oldest and most important divide in the field.

  • Difficulty
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Advanced

Confirmation and Finality on a DAG

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1 h

An entry becomes safe to rely on only once it is confirmed to a sufficient degree. Judging that point protects against acting on records that could still be reversed.

  • Difficulty
Start
Beginner

Comparing Legislative Variants

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1 h

use AI to line up drafting options and their consequences side by side.

  • Difficulty
Start
Intermediate

Building a Competence Model

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1 h

A competence model names the competences a programme develops and the observable indicators that show each one, giving assessment something concrete to target.

  • Difficulty
Start
Advanced

Compliance in Healthcare

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1 h

Applying the compliance duties specific to the healthcare sector with AI support.

  • Difficulty
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Intermediate

Leading AI-Supported Teams

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1 h

Leading teams whose everyday work is interwoven with AI systems.

  • Difficulty
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Intermediate

Human Oversight as a Deployer Duty

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1 h

Deployers must put real people in place to oversee a high-risk system, with the authority, time, and competence to intervene.

  • Difficulty
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Intermediate

Checking a Model with AI

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1 h

Using AI to hunt for broken links, sign errors, and inconsistent references in a model.

  • Difficulty
Start
Beginner

The Startup Advisory Board

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1 h

Advisors give a founder outside perspective and access, but only if chosen and used deliberately. An idle board is wasted goodwill.

  • Difficulty
Start
Intermediate

Cash Conversion Cycle

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1 h

How to measure the cash conversion cycle and shorten it across its three levers. It shows how long a franc is tied up before it returns as cash.

  • Difficulty
Start
Advanced

Internal Rate of Return and Its Traps

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1 h

Computing an IRR and recognising where it misleads, from multiple roots to scale and reinvestment distortions.

  • Difficulty
Start
Beginner

Pacing a Short for Retention

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1 h

Cutting, reordering, and timing a clip controls whether viewers stay to the end, which is the metric short-form platforms reward most.

  • Difficulty
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Beginner

What a Relational Database Is

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1 h

explain tables, rows, and relationships as the backbone of most business systems.

  • Difficulty
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Beginner

Running a Bias Test Suite for a Financial AI Model

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1 h

assemble and run the statistical fairness checks for a regulated model.

  • Difficulty
Start
Beginner

AI Governance Frameworks for Financial Institutions

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1 h

choose and apply an AI governance framework inside a bank.

  • Difficulty
Start
Advanced

Detecting Bias in Test Items

Sw2:academic01:obj:p1:fhvf7rqfkpep4csd6vilvj6f57asaedpq6rnjh6zgv72lexjwgkq:180b571b

1 h

Statistical fairness methods flag items that behave unfairly across learner groups after ability is accounted for, surfacing candidates for review.

  • Difficulty
Start
Beginner

Transaction Processing Systems

Sw2:academic01:obj:p1:352l6ojnhp7kzl2h56ukhaamkvc2vas6xyjsicsz2rkl2iikdx5a:715bb71f

1 h

explain how the systems of record capture day-to-day operational events that feed everything above them.

  • Difficulty
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Intermediate

Curriculum Mapping

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1 h

Mapping learning outcomes across modules to reveal gaps, overlaps, and duplication in a programme.

  • Difficulty
Start
Beginner

Sequencing Consolidation Measures

Sw2:academic01:obj:p1:4eufcqmgijyqgwsk7bxvcqaddq6lleimrdfwvx6wu6knyru3iqza:a64086df

1 h

order revenue and spending measures to close a deficit while limiting harm.

  • Difficulty
Start
Intermediate

Why Integrations Destroy Value

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1 h

Most deals lose value after closing for a handful of recurring reasons, and knowing them early helps a buyer plan to avoid them.

  • Difficulty
Start
Beginner

Mapping Bounded Contexts to Services

Sw2:academic01:obj:p1:qekrhdlp3ebecv3rowjd57eda3vy2e2x5hmmom6zlqv7jt442wuq:903cce44

1 h

use domain boundaries to decide where one service ends and the next begins.

  • Difficulty
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Beginner

Preparing a Manuscript to Journal Guidelines

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1 h

format a manuscript to a target journal's author guidelines.

  • Difficulty
Start
Beginner

Detecting Gaps in Published Finance Data

Sw2:academic01:obj:p1:6rozhvqzqajothbpydps4h3zpq4idbuqfhz5pej4tmlfu3nlhelq:b0b3d61f

1 h

use AI to find what a budget disclosure omits.

  • Difficulty
Start
Intermediate

Why Transformers Replaced Earlier Models

Sw2:academic01:obj:p1:kb7742n3cus4d3kgaei3j4nwygapt7uof6ykb7cbo7him5r5tuza:9c1c2af6

1 h

The limits of earlier sequence models, such as poor long-range memory and no parallelism, and how the transformer overcame them.

  • Difficulty
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Intermediate

Business Finance Essentials for Non-Financial Managers

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1 h

How to give a manager without a business degree the finance grounding they need to steer. It covers the essentials broadly rather than deeply.

  • Difficulty
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Beginner

Model Documentation

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1 h

write model documentation that supports both validation and external audit.

  • Difficulty
Start
Intermediate

Time-Series Feature Engineering for Machines

Sw2:academic01:obj:p1:wgepauout26cwsi7p7z6f2gr5t35au6cui3tdbbsrxfe2i7jjmfa:f8569f15

1 h

Machine signals yield useful features in both the time and frequency domains. Extracting them turns raw waveforms into inputs a model can learn from.

  • Difficulty
Start
Intermediate

Consistency Across a Set of Assets

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1 h

A campaign is judged as a whole, not asset by asset. Keeping a batch coherent in style, tone, and detail makes the set read as one deliberate body of work.

  • Difficulty
Start
Expert

Building an LBO Model

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1 h

Constructing a leveraged buyout model end to end, sources and uses, a debt schedule, and a returns waterfall, including its circular references.

  • Difficulty
Start
Beginner

Trusted Research Environments

Sw2:academic01:obj:p1:h5dzyrzicoqmllamaz3km3wcuioidtmtccwlgy2rsmdejqpwh6jq:9617f1d9

1 h

analyse sensitive health data inside a secure enclave.

  • Difficulty
Start
Advanced

US Liability and Discovery Exposure

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1 h

Managing US-style liability and e-discovery exposure for a European group operating in the United States.

  • Difficulty
Start
Beginner

Journal-Level Metrics and Their Limits

Sw2:academic01:obj:p1:kh2dline6fhxti7c5eqsvevtvn7orlih2y6fhbjjih6tenl7zuvq:6f21ff28

1 h

read impact factor and related journal metrics without over-trusting them.

  • Difficulty
Start
Beginner

Integration as an Architectural Concern

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1 h

treat how systems connect as a design decision, not an afterthought.

  • Difficulty
Start
Beginner

Watermarks and Signature Frames

Sw2:academic01:obj:p1:3y6xqnjerr3z2eajmtog6fiwr6qsxvvdxza3h3fzctdvt7mtigdq:b8890256

1 h

Adding a recognisable frame or mark to owned content so it stays identifiable when reshared.

  • Difficulty
Start
Advanced

Board Duties of Care and Loyalty

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1 h

Directors owe duties of care (Sorgfaltspflicht) and loyalty (Treuepflicht) in every decision. Applying them to a concrete case is the heart of director conduct.

  • Difficulty
Start
Intermediate

Prompt Compression and Context Trimming

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1 h

Shrinking the text sent to a model to lower token cost while keeping the information that matters. Done well, it saves money without hurting answer quality.

  • Difficulty
Start
Intermediate

Preliminary Diagnosis with Clear Limits

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1 h

A tentative read of an issue is useful only when it comes with a clear statement of its limits and when to bring in an expert.

  • Difficulty
Start
Beginner

Ethics of AI in Peer Review

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1 h

apply the rules on confidentiality and AI tool use when reviewing others' unpublished work.

  • Difficulty
Start
Beginner

Pinning and Verifying Dependencies

Sw2:academic01:obj:p1:z6gslhfxiaxhxbsc5zmy5y72d7xtrt7lrmmkzjnlxw5bcfnvfdfq:d6120470

1 h

lock and hash-verify everything that enters a build.

  • Difficulty
Start
Intermediate

People Leadership with AI

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1 h

Using AI as a leadership aid without handing over the judgement that leadership requires.

  • Difficulty
Start
Advanced

Fraud Detection with AI

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1 h

How pattern and anomaly detection surface indicators of fraud hidden in transaction data.

  • Difficulty
Start
Beginner

Adversarial and Abuse Resistance

Sw2:academic01:obj:p1:wcoqjiezdqwzbg65kbn77c6n2fy55eptftojr5ouqag4mr5fsiqa:23d23ddf

1 h

harden a service against misuse at scale.

  • Difficulty
Start
Intermediate

Headcount and Personnel Cost Planning

Sw2:academic01:obj:p1:bzthxwlewkicdkby6af4wihgpnpxfh5dhmmsqjfulywxgwvrgtwq:6c37eb7e

1 h

Building a headcount and personnel-cost plan tied to activity levels and hiring assumptions.

  • Difficulty
Start
Beginner

Allocation Key Data Quality

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1 h

audit the population, area, and socio-economic inputs to an allocation key for gaps, staleness, and inconsistency.

  • Difficulty
Start
Advanced

Early-Warning Systems for Compliance

Sw2:academic01:obj:p1:pdpdba2nar5t5xg4mlvdqctukohjs56tv3cncb4zeagg4gq6oanq:d0e6a5a0

1 h

Designing early-warning indicators that flag rising compliance risk before an incident happens. Leading indicators are inherently harder to design than lagging ones.

  • Difficulty
Start
Intermediate

Tailoring the Story to the Audience

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1 h

The same venture story must land differently for a customer, a partner, and a hire. Tailoring keeps the core true while shifting emphasis.

  • Difficulty
Start
Intermediate

Training and Awareness Under the Policy

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1 h

An AI-use policy sets expectations for staff AI literacy, from basic awareness to role-specific training. Competent people are what make the rest of the policy real.

  • Difficulty
Start
Beginner

IRRBB: Interest Rate Risk in the Banking Book

Sw2:academic01:obj:p1:lioucvalmfmp7lsrsc4qbyzinghwtr4oa2eebatyovlay4fb4oha:01b43534

1 h

Describe how interest rate risk in the banking book is measured and supervised.

  • Difficulty
Start
Beginner

Beteiligungsmanagement

Sw2:academic01:obj:p1:s5h5sijej2k6l7yhnivthququ5pzlk7riq6cycpequ554qbvpr5q:32591e2d

1 h

build and maintain an overview of the state's shareholdings and their performance.

  • Difficulty
Start
Beginner

Where Automation Creates Value and Where It Needs Supervision

Sw2:academic01:obj:p1:yzogqo5m6iktchbmwrbajg7njnmblhwd3ydibhvpqq2oiydip2qq:7bebc904

1 h

sort risk tasks into those AI can own and those a human must supervise.

  • Difficulty
Start
Beginner

The Statistical Analysis Plan

Sw2:academic01:obj:p1:anbnxfthsgtba2pw6blpkwdqlbaci4vxabzvee3kejdda7qaotuq:e642b941

1 h

draft an analysis plan that ties each hypothesis to a specific test.

  • Difficulty
Start
Intermediate

CSRD Scope and Applicability

Sw2:academic01:obj:p1:5k54ezbsc6om7qxqcvtjwbtzcgxzzbbxy22dxzl2hsa775tgrwma:e5b47cec

1 h

Determining whether and when an entity falls within the Corporate Sustainability Reporting Directive, based on size, listing, and group thresholds. Getting scope right sets the whole reporting obligation.

  • Difficulty
Start
Advanced

Reasoning Through an Ethical Case

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1 h

Working a concrete AI dilemma to a defensible decision turns abstract ethics into a practised skill.

  • Difficulty
Start
Intermediate

Managing a Token Budget

Sw2:academic01:obj:p1:vlwx7jjzr5dtos7kiqbdbyrdwuabdwmpbedrbwez54i6sei3ieaa:fc60e472

1 h

Keeping an AI feature inside an agreed spending ceiling as usage grows. Budget management prevents a useful feature from becoming an unaffordable one.

  • Difficulty
Start
Intermediate

Founder Time and Focus Management

Sw2:academic01:obj:p1:3ghwohcfuybbg4hqlpvlvztnwemxbectme5mxk7bnljzcnbfqseq:91f95425

1 h

A founder's attention is the scarcest resource, and AI can absorb routine work to protect it. Managing focus is managing the company's throughput.

  • Difficulty
Start
Beginner

Defining Tax Compliance Culture and Objectives

Sw2:academic01:obj:p1:3vx734uwdwfswqbcxqdcvk66ikavqfgr3xhmlfqrwid33tr2oglq:0cbf0cef

1 h

articulate the tone and the compliance goals the system serves.

  • Difficulty
Start
Beginner

Monitoring and Continuous Improvement

Sw2:academic01:obj:p1:jnrdo7xh63biyvqlfvangsogj7dvqweeajh2fvjw2t4oyh4puj2q:ac4830e6

1 h

run the loop that keeps the Tax CMS current.

  • Difficulty
Start
Beginner

Building the Budget and Justification

Sw2:academic01:obj:p1:lox36x3hpjow4oqjkkiwpgffgzvyxdby44usj3p2htv6hckt56bq:babb1471

1 h

construct a project budget and justify each cost category.

  • Difficulty
Start
Beginner

Upscaling and Export Formats

Sw2:academic01:obj:p1:y2miin6ngzg6jvp4z7ridejwzdoi6s65zegzo3vy6stfbylv4a5q:07e84143

1 h

Enlarging an image and exporting it in the right format prepares it for its intended channel.

  • Difficulty
Start
Beginner

Customer Trust and Disclosure in AI Selling

Sw2:academic01:obj:p1:wpynmenyhq5x6nmnnuaz7l3jlvltkv6g2lx7k33vlkwoxpxs6tzq:c679e230

1 h

decide when and how to disclose AI involvement to a customer.

  • Difficulty
Start
Intermediate

The Federal Council's Trustworthy-AI Position

Sw2:academic01:obj:p1:v3yvpdyzxesnubqf3h4nwbersqx5ldxhqjlnrspar4s3ujptzcka:a4489a31

1 h

The Swiss Federal Council has set out its stance on trustworthy AI, signalling the direction Swiss policy is likely to take.

  • Difficulty
Start
Beginner

Detecting a Missing or Incomplete Clause

Sw2:academic01:obj:p1:vxdxvtzvmo3adcvefbrq2wnxbpw35tuks47va76iw5aajsc6owga:c4302bc1

1 h

surface omissions in a draft for the notary to review before authentication.

  • Difficulty
Start
Advanced

Disclosure Obligations Under HGB

Sw2:academic01:obj:p1:gpka7ytzznliwvokumulh26vl63l4y22s5x34gskfwuauxbuqryq:3cbcf5f6

1 h

How much a company must disclose depends on its size class. Assembling the required Anhang disclosures for that class keeps the accounts compliant.

  • Difficulty
Start
Intermediate

Successor Readiness Assessment

Sw2:academic01:obj:p1:hddoeos7ye65xbprmap5vgsmgcpn74j5wjgz6ho4p37r46fvfwkq:569e1c1b

1 h

Assessing and tracking how ready candidate successors are to take on a role.

  • Difficulty
Start
Beginner

Prevalence and Predictive Value

Sw2:academic01:obj:p1:6psjfx2khacvsyot44lmdfit5girou5okf2do737csecbiwercsq:f1e3f200

1 h

reason about how disease prevalence shifts positive and negative predictive value.

  • Difficulty
Start
Advanced

Mass Data Analysis Across the General Ledger

Sw2:academic01:obj:p1:zy2qfg66rmirv5ltrczwrn5d7e4a4l6dxq4wkrn5i2ivjeyevyia:6ce5d1ef

1 h

Running analytics over the complete general ledger to surface anomalies a sample would miss.

  • Difficulty
Start
Intermediate

Internal Audit and Management Review

Sw2:academic01:obj:p1:wmfmk2awmiscbhq6ekcjsemrk6ri2kzzhdxrt22aqizdsogtu3pq:4531650f

1 h

Internal audits and periodic management reviews are the checks that keep an AI management system honest and current. They surface gaps before external scrutiny does.

  • Difficulty
Start
Beginner

Setting Monitoring Thresholds and Alerts

Sw2:academic01:obj:p1:sgncrl2vso6op2fygywfduo5kcs2ndq6cgyd7ekvsrscqghc633a:c9f748ff

1 h

choose thresholds that catch genuine degradation without false alarms.

  • Difficulty
Start
Beginner

Asking the Model to Critique Its Output

Sw2:academic01:obj:p1:frcksh4sijl6au6ktvhkn4qj23nliib3gwg74qtbifrfacfyjxoq:a71077bf

1 h

use self-review inside a prompt to raise quality.

  • Difficulty
Start
Beginner

Social Scoring

Sw2:academic01:obj:p1:bki6u3iu5ygtawqhzakb4unnetg26gcmqjam6f5ux2kuxxkntlwa:402928e1

1 h

Rating people by behaviour or traits to their detriment across unrelated contexts is prohibited whether a public body or a private company does it.

  • Difficulty
Start
Beginner

Deepfake Fraud and Impersonation

Sw2:academic01:obj:p1:xpiwviufgxa6eq5d5drw35rwhi4ar6jmaobvlzxw4dxnsztfqbgq:fec63c48

1 h

Voice-clone and video-call scams use synthetic media to deceive victims, and recognising the pattern is a practical defence.

  • Difficulty
Start
Advanced

Strategic Fit Scoring

Sw2:academic01:obj:p1:ggsicxomnbkmpcwict7xfobtnxysp2b5utsevwxh3kip3rjagheq:ece2eafe

1 h

How to score initiatives for strategic fit alongside their financial return. Fit keeps a portfolio pointed at the strategy, not just at the highest number.

  • Difficulty
Start
Intermediate

The Investor FAQ and Data Sheet

Sw2:academic01:obj:p1:xxwmjadtgoe2wrulz25zqn7vuhdfo6opjamw4rwxgfckvifjflvq:d353f577

1 h

A maintained set of accurate, reusable facts about the company that answers the questions investors ask most often.

  • Difficulty
Start
Beginner

The AI Software Supply Chain

Sw2:academic01:obj:p1:wajvgl7fznqywf7uci3tpbo5z3xlmlzu2cwk72v7zivapxl5ab2a:6d7d13b3

1 h

map every dependency between raw data and a served model.

  • Difficulty
Start
Intermediate

Distillation

Sw2:academic01:obj:p1:jt5453onk4ggc5o6qhbbgvahazkdgone5qbnz32l4yoohtpsc7ca:f88c3198

1 h

Distillation trains a smaller student model to imitate a larger teacher, keeping much of its quality at lower cost.

  • Difficulty
Start
Beginner

The Extract-Then-Act Pattern

Sw2:academic01:obj:p1:nhfml7gvtxao5safdr5mkf7hjqq6erllbiwfstioqrf7lpv32rsa:a8d1c507

1 h

pull structured data first, then act on it.

  • Difficulty
Start
Intermediate

Grounding and Citation

Sw2:academic01:obj:p1:vnwt2j6r5qckptk72vpabefziqsn47ekod4zsrubcnnp7r4p6p2q:fc35368b

1 h

Grounding ties each generated claim to the passage it came from, so answers can be traced and trusted.

  • Difficulty
Start
Beginner

Personal Data Limits in Sales AI

Sw2:academic01:obj:p1:jfgjzoy56kx6zaxopaogligk4ztr376fd5lnmuzctya4qrzgk7xa:ac6c93ae

1 h

keep customer and prospect data use within data-protection limits in the sales stack.

  • Difficulty
Start
Intermediate

Reranking Results

Sw2:academic01:obj:p1:3hbcnfjbfgikgx4mnluc27ouvl74bc3rdaqinib4yjncxon47wyq:3489ddea

1 h

A reranker reorders retrieved candidates so the most relevant passages rise to the top before generation.

  • Difficulty
Start
Beginner

Validating a Derivatives Pricing Model

Sw2:academic01:obj:p1:rqfkwqcqvrdm3mohyf5bjfdsfvf5xcuwsrffdv3rbcdvlpkfvpoa:772fd408

1 h

assess valuation model risk in a pricing library.

  • Difficulty
Start
Intermediate

Automated Formative Feedback at Scale

Sw2:academic01:obj:p1:5tg4vmifvefbeds5oetjgzy3vxvdmctj2fnffpkaxcprxilzuhwq:097c0040

1 h

AI can generate specific, actionable feedback on many submissions at once, giving learners guidance that would be impractical to write by hand.

  • Difficulty
Start
Beginner

The Structure of Intergovernmental Bargaining

Sw2:academic01:obj:p1:dcd2lgk4i2kcog4h3dxfhsp3bwtzigoqpshnpotiz4dqpk24qsuq:36d50d30

1 h

use AI to map the parties, interests, and veto points in a multi-level fiscal negotiation.

  • Difficulty
Start
Beginner

Verwaltungsrat Feststellungen in a Capital Increase

Sw2:academic01:obj:p1:7tcnxm7hfjo23c33pcyoae7atz24ydql26xxs5catuepriitgb5a:40692161

1 h

explain the board's declarations that feed the notarised capital-increase act.

  • Difficulty
Start
Intermediate

Biometric Categorisation and Emotion Recognition Limits

Sw2:academic01:obj:p1:kb6dpuujqjzltycr26wlfm7fdbii4mkiovd62f5id6xn4k7ikoqa:6e112cb0

1 h

The Act blocks inferring sensitive traits from biometrics and reading emotions in settings like the workplace and schools, with narrow exceptions.

  • Difficulty
Start
Beginner

Handling Text Too Long for One Prompt

Sw2:academic01:obj:p1:35nlj2ocl3d5h57ggp7nqwoodu7bjqv4oiv6fbl5z3otwpc63g5a:eab99bff

1 h

chunk a long document and combine the partial results.

  • Difficulty
Start
Beginner

Improving a Weak Prompt

Sw2:academic01:obj:p1:eah5uft4ngrhxtxdfdx4ceqxmelkkeaz4qmjr4fzwlk7hccswsga:b9e019b4

1 h

diagnose why a prompt underperforms and rewrite it.

  • Difficulty
Start
Beginner

Sacheinlage and Sachübernahme Evidence at the Notary

Sw2:academic01:obj:p1:z4lyu6vkxiblctez2cnmaovhocjtzfx6tzwdvssda44zczjowdwa:f89b8a07

1 h

identify the reports and contracts the notary must have on file for a contribution in kind.

  • Difficulty
Start
Beginner

Anomaly Detection Across an Invoice Population

Sw2:academic01:obj:p1:rsrubmgcsycbkzaljuryitx6hg2rvl4ybnlvudgntvsxys6ai35q:7233c17b

1 h

flag outliers and suspicious patterns in a large invoice set.

  • Difficulty
Start
Beginner

Recognising Gestaltungsmissbrauch

Sw2:academic01:obj:p1:hwnusxjqjmqmnkkggd6q4bsgubwlwwle2wlok6fejhbj76hpwaoa:fbd6d677

1 h

spot where a structure crosses into impermissible tax avoidance under the anti-abuse rule.

  • Difficulty
Start
Intermediate

What the AI Act Regulates

Sw2:academic01:obj:p1:xraxaauohxjy6xprxgdo7eckeolafkbpzfpsabskkml6vayelwuq:23a9b4ce

1 h

The EU AI Act sets rules for how AI systems may be built and used, covering some uses tightly and leaving others alone. Knowing its scope is the entry point to the whole regime.

  • Difficulty
Start
Beginner

Service Levels for an AI-Augmented Legal Function

Sw2:academic01:obj:p1:ncjlridykkbb2yqj465qnjrm6zmvrgoqqob7k5hj5dpwhwqwhtga:fcdac928

1 h

set and monitor turnaround and quality metrics for legal work with AI in the loop.

  • Difficulty
Start
Beginner

Preparing the VAT Return from Transaction Data

Sw2:academic01:obj:p1:3wcdxfm5yfjrs2xekumlwmo7si3732kmzz4mu5qavj7ofsvdbe6a:23e8fa6c

1 h

aggregate cleaned transaction data into a filed return.

  • Difficulty
Start
Advanced

Auditing gGmbH and Foundation Forms

Sw2:academic01:obj:p1:zreabpuqcnh2lh57ioz3wvgvcv52yqnp25k6autll2giknsmudva:82e48974

1 h

How to audit non-profit forms such as the gGmbH and the Stiftung, where use-of-funds and purpose constraints join the usual scope.

  • Difficulty
Start
Intermediate

Managing Cognitive Load in a Lesson

Sw2:academic01:obj:p1:lsj3qzqndewmkwpb64nukqgmidi5yefgnoztg3zyyocavomjnkna:6137dfa5

1 h

Cognitive load theory separates the load a topic inherently carries from load the design adds, and managing both is what lets an outcome actually land.

  • Difficulty
Start
Beginner

Measuring Enablement Impact

Sw2:academic01:obj:p1:kliyjcdijjx5qu4n2hsdotogsul4jcuxmjopbztftajkt2yiqtba:9035eee4

1 h

measure whether enablement actually changed behaviour.

  • Difficulty
Start
Expert

Massenentlassungsverfahren

Sw2:academic01:obj:p1:snvb26znv2dpc4yv43dvxotjqzytcmlploi4v4b3vxi25hncke5q:e4769746

1 h

Running the collective-redundancy procedure correctly with AI support.

  • Difficulty
Start
Advanced

Controls Over AI Tools Inside the IKS

Sw2:academic01:obj:p1:nlqynlokxezvlqpi642xnnt4sguc7gut56qxpqqgjxt4e7rgrpta:b0645ed2

1 h

How to extend an internal control system so it governs the AI tools staff use in finance and reporting.

  • Difficulty
Start
Intermediate

Speed and Context on Local Hardware

Sw2:academic01:obj:p1:4qidwnuotzlw2fd4f4tsemkpglod4kaclgucgedlnsdhado3iupq:a1fef3cc

1 h

Local hardware caps how fast a model runs and how much context it can hold, setting realistic expectations.

  • Difficulty
Start
Advanced

Make-or-Buy Decisions

Sw2:academic01:obj:p1:e3fdv2iimw52h724m72me6h75wr5yb6yxjbk7rmbkifu4a5q6rna:b7cbe898

1 h

How to frame a make-or-buy decision on relevant costs rather than misleading full-cost figures. The classic trap is to include costs that do not change with the decision.

  • Difficulty
Start
Advanced

Sizing and Framing the Market Opportunity

Sw2:academic01:obj:p1:ufk7jtpkh3nfrfkdbwrx77akcvghms4brqvtv4wht6zmwcxdu7ga:dd3c1f5c

1 h

How to present market size credibly, with AI helping to structure and source the estimate so it holds up to challenge.

  • Difficulty
Start
Advanced

Validating an Inspection Model Against a Gauge Study

Sw2:academic01:obj:p1:5dta42uonkqfvnrp5drjrlbd2nhsw3maicahlgvsg3xdxyzhxzla:eb277504

1 h

An AI inspection must meet measurement-system capability standards, confirmed through a gauge study. Passing it is what makes the inspection trusted as a measurement.

  • Difficulty
Start
Beginner

Sampling Versus Full-Population in Public Audit

Sw2:academic01:obj:p1:xla3ed7cd5xovaf7kku7jd3ikhxfv2jhz42qlj7qzahah2dy4kaa:33be17a7

1 h

choose and justify a testing approach for a public audit.

  • Difficulty
Start
Intermediate

Designing a Simple Response Flow

Sw2:academic01:obj:p1:repghsihih77fwnkh75sruioaann23mhh5q2e4e3hpy7brxqjpfa:41d4dc33

1 h

Mapping an automated conversation flow for a common request from opening to resolution. A clear flow is what turns scattered replies into a reliable path.

  • Difficulty
Start
Beginner

Conceptual, Logical, and Physical Models

Sw2:academic01:obj:p1:zl7aa2refnepzktj3v5dg5jszd64dla4erxwnjpkoak625roydva:4635abe5

1 h

move a data model through its three levels of abstraction.

  • Difficulty
Start
Beginner

Evidence Synthesis for a Review Panel

Sw2:academic01:obj:p1:uinocq5ie7uk6sbhqwfec6vasya3nhocerannr5upixwe5nkrkhq:25db3323

1 h

synthesise evaluations and data into a concise options paper.

  • Difficulty
Start
Beginner

Placing an AI Capability in the Architecture

Sw2:academic01:obj:p1:amcygo3tutoxxc53nczxybardkd4ejxf4dan4goezpdl6hfsn6bq:4266ebdb

1 h

decide where a model, a retrieval layer, and a data store sit in an enterprise design.

  • Difficulty
Start
Intermediate

Aligning Disclosure with the Narrative

Sw2:academic01:obj:p1:22gb2nebql42sx6pvthhrcny2ecisr7c4it75d22uakv2f5xi77q:492e97b0

1 h

Keeping public statements consistent with the equity story and with each other, so nothing the company says contradicts itself.

  • Difficulty
Start
Intermediate

Keeping a Story Ambitious and Defensible

Sw2:academic01:obj:p1:vdcita7vcpffxqnzvazwmb3xju7ip36q6caueagvd735gusjsfra:ef0b4d21

1 h

How to hold a startup story to what can actually be evidenced while keeping it bold enough to matter.

  • Difficulty
Start
Beginner

Producing Tables on Demand

Sw2:academic01:obj:p1:53vr5yuhujk3wt6z4bqn7u2psusfmkyecz2rt7gciow2jwolom3q:d42532dd

1 h

get an answer back as a usable table.

  • Difficulty
Start
Advanced

Assuring ESRS Data Point Consolidation

Sw2:academic01:obj:p1:zupbfglpqgmnepmjg5uua2blueh5rmeant4q2dfbyo7vowzz5pba:83059343

1 h

How to verify the aggregation and consolidation of ESRS data up to the reported figures.

  • Difficulty
Start
Beginner

Data Quality for Risk Models

Sw2:academic01:obj:p1:wsm63ai4hs44ozeusx6ph5iy6d5jkfcqvmwggglp5adsd2lihcuq:3ab3dd15

1 h

assess whether data is fit to feed a risk model.

  • Difficulty
Start
Beginner

Sample Size and Statistical Power

Sw2:academic01:obj:p1:2jdxdfywnfqp3zqvrqceapcqp5n2vbehunhosghatjksechkd3wa:ee3ac285

1 h

determine the sample size a study needs to detect the effect it targets.

  • Difficulty
Start
Beginner

Risk Committee Work

Sw2:academic01:obj:p1:y4sqg5sujh65yqqulg2i65exp2h2wchb2jubl4dd2b5hs6oekg2a:3982008e

1 h

structure risk-committee oversight and interrogate a risk report.

  • Difficulty
Start
Intermediate

Public-Benefit Reporting Obligations

Sw2:academic01:obj:p1:q7un6hl2srlwh5bt2fuvysh3g6ab6sm3ko2drwakcgklk4aj5zaa:eb1b1f21

1 h

Assembling the reporting a non-profit owes its members, donors, and authorities to demonstrate proper, purpose-aligned use of funds. Accountability to stakeholders drives the content.

  • Difficulty
Start
Beginner

Cloud Migration Strategies

Sw2:academic01:obj:p1:vfi3vy5tb3ajq6hcttkhetgsqapa6qcffxr4bowgtknvqwikmyqa:35fe5fbd

1 h

choose an approach for moving a system to the cloud.

  • Difficulty
Start
Beginner

API Design in ASP.NET

Sw2:academic01:obj:p1:rjmywcwli7itqmnkd4b2zl6rxtbs66x2ghox64as3nvdiszszpaq:8e8d91ee

1 h

expose a clean, versioned web API.

  • Difficulty
Start
Beginner

Use Case Triage for AI Models

Sw2:academic01:obj:p1:kvyae7ejxo5vfqfc7cqkx6b7vuds4d3r7dpvegidglnnk66cafzq:3644ae41

1 h

decide which AI use cases require which depth of validation.

  • Difficulty
Start
Advanced

Employee Data Under Paragraph 26 BDSG

Sw2:academic01:obj:p1:hp444ihlzn53xflhw36e3v4f2znolief2fomi34kkn3nuyfjbdxa:08c512c9

1 h

Applying the special German legal basis for processing employee data to an AI HR use case. This provision governs much of what HR systems may lawfully do.

  • Difficulty
Start
Advanced

Steering State-Owned Enterprises

Sw2:academic01:obj:p1:szz3t3b5ghfhwztsregul7ysb54lrowwiq6iinqq6dazgsewdffa:78ce87b0

1 h

A state-owned enterprise must balance political objectives against commercial viability. Governing it means holding that tension deliberately.

  • Difficulty
Start
Beginner

Number Needed to Treat

Sw2:academic01:obj:p1:wz7lqygl7slhm5crj4rg7ov6wc2wrn4i63my6oremkehe6ul5xyq:51ff7077

1 h

translate an effect size into a number needed to treat for clinical meaning.

  • Difficulty
Start
Advanced

Degradation Modelling

Sw2:academic01:obj:p1:naarimr6jx5eoylzv47uae7on3ydcekfzync2lof34gzlj7mztzq:0d33b4ad

1 h

A degradation model captures how a component wears over time, supporting a maintenance forecast. It is the physical story that a remaining-life estimate rests on.

  • Difficulty
Start
Beginner

Change Management for Lawyers Adopting AI

Sw2:academic01:obj:p1:h3f237t6jyjlyjwu35pzmzo5envoqlfkbi74f6iwykcfcsfwrunq:9cb4c11c

1 h

address resistance and skill gaps when introducing AI into a legal team.

  • Difficulty
Start
Beginner

Intercompany Transaction Mapping

Sw2:academic01:obj:p1:t3xx2ztfhhr25guwuir7p46jbhzctjaziwsqgpeefelrb4zz2cfq:65be0aee

1 h

inventory the related-party flows that need pricing and documentation.

  • Difficulty
Start
Beginner

Client Consent and Engagement-Letter Terms for AI Use

Sw2:academic01:obj:p1:6ieomujzq5zppljq6xv57ruxrz5hrtxnty2fijrkgczuxnfr5yva:6bbd7bee

1 h

draft engagement terms that disclose and authorise AI use.

  • Difficulty
Start
Advanced

When a Deployer Becomes a Provider

Sw2:academic01:obj:p1:2adyoidcdqv27mgz3sp7wkv66nuvxfnhznkjms3nsp4hgj4bdxla:301a7959

1 h

A deployer who substantially modifies or rebrands a system can inherit the full, heavier duties of a provider. Recognising these triggers avoids taking on obligations unknowingly.

  • Difficulty
Start
Beginner

Scripting a Hook-Led Carousel

Sw2:academic01:obj:p1:4mfkmoapzzj5ew2pthcovdkpzmy2hh6fjw32wyli42odd5n775qq:7a6b6363

1 h

A swipeable post lives or dies on its first slide, and writing the opening and flow so it earns the next swipe is the whole craft.

  • Difficulty
Start
Beginner

Why AI Use Must Be Documented

Sw2:academic01:obj:p1:n2um4avwu45wlfsyojf2opgg7gxpv4dwxreekuh2uhypq4yarvoa:8be9cbab

1 h

Documenting AI use is what makes later review, accountability, and defence possible. Without a record, decisions cannot be explained or challenged.

  • Difficulty
Start
Beginner

Keeping an Auditable Trail of AI Use in a Notarial File

Sw2:academic01:obj:p1:wgyezh3gcfqzd4etaql34jslfyryxzfaom3dhp7zqaa5e4gz7tsq:5b70412b

1 h

record where and how AI touched a deed so the file survives professional scrutiny.

  • Difficulty
Start
Advanced

Regulatory Evidence in Chemicals

Sw2:academic01:obj:p1:vvaw3f3x325iru5wbejsiktsezpxzjxjusic6vgfwsqevibsrakq:0db9c897

1 h

Assembling the regulatory evidence a specialty-chemicals compliance audit will demand.

  • Difficulty
Start
Advanced

Real Estate Investment Analysis

Sw2:academic01:obj:p1:a7wol4xcip5no2ffafzrojdoynceh3euzxbt6u6vbj7l6accdmzq:e91d7210

1 h

Valuing a property investment combines yields, cash flows, and leverage into a case, then frames the equity story an investor is asked to back.

  • Difficulty
Start
Beginner

Regularisation as Bias Control

Sw2:academic01:obj:p1:jgkpr3rls5j34sso23yrw2vm2afl4pzemhkvg7gvq464tbi4x3ta:3317810a

1 h

trade fit for generalisation deliberately.

  • Difficulty
Start
Intermediate

Records and Deadlines in Whistleblower Cases

Sw2:academic01:obj:p1:nbd2cjrg27zvltbleckaqcxr5ih35xatnkm3x4j3qbzttofidldq:133d3791

1 h

A whistleblower channel has record-keeping and deadline duties that apply whatever tools are used.

  • Difficulty
Start
Expert

Stability of a Learned Controller

Sw2:academic01:obj:p1:sjdxetszewfoavdyws3qzge6cebd3rxifwcpxiosc6v3jqtnkxpq:b6ef1312

1 h

When part of the control law is learned, classical guarantees of stability and boundedness no longer come for free. Reasoning about them requires control theory applied to a data-driven component.

  • Difficulty
Start
Beginner

Contingency and Reserve Design

Sw2:academic01:obj:p1:xn26ww2fwsi4n64ntifwrevrc5h3jupetmyjx4qv4ueiapfbeo3a:44352f2f

1 h

size and structure fiscal reserves against modelled shocks.

  • Difficulty
Start
Beginner

Designing a Survey Instrument

Sw2:academic01:obj:p1:vaosvzor4ed46biey22zghhogjzqwksbiiylaokwea6ygb5lg4jq:5cfbc2a8

1 h

build a survey that measures the intended constructs and nothing else.

  • Difficulty
Start
Beginner

Multivariate Analysis of Variance

Sw2:academic01:obj:p1:a3nmmk2rp7p65znihftc3ykqcwb2tyedopgrf7tc6kw3lmtlt27a:48b3b924

1 h

test group differences across several outcomes jointly.

  • Difficulty
Start
Beginner

Tender and RFP Response with AI

Sw2:academic01:obj:p1:5dp26rg6yw7ecrr4e66in6k4uhy36hb3rki5rblgfhatbmgbcbqq:27803391

1 h

extract requirements from a tender and draft compliant response sections traceably.

  • Difficulty
Start
Beginner

Bayes' Theorem in Practice

Sw2:academic01:obj:p1:ix764ow5tpdsgzf75oq73sat7xzv7jeu3ij332qxifk3skvh2gsa:a4f34476

1 h

update a probability as new evidence arrives.

  • Difficulty
Start
Beginner

Audit Readiness for Models

Sw2:academic01:obj:p1:lmnww7yonleaxtblk4kd4u25t64niymf5i3pylrcjcj6cmu5hneq:ddd5114f

1 h

prepare a model file that survives external examination.

  • Difficulty
Start
Beginner

Refreshing Research Against Legal Change

Sw2:academic01:obj:p1:r5e6p2ozxslkwngafjsfjhqqshjzuwl6sfccmacatrfd5cakqjba:292a90d0

1 h

update a memo when new law or a knowledge cutoff makes it stale.

  • Difficulty
Start
Advanced

Positional Encoding

Sw2:academic01:obj:p1:qet45gyrs54foe22qnh5xxq2r4tbrhpxewwx4slkqeixkmej6qaq:e2f658a5

1 h

Because attention has no built-in sense of order, positional encodings inject each token's position into its representation.

  • Difficulty
Start
Intermediate

Voice Cloning and Consent

Sw2:academic01:obj:p1:skti5ojiefvuemkvenwe7wzaseccllx43ij6vyozb2clthh34vxq:809b3f85

1 h

A custom voice can be built from a sample, but doing so requires an explicit consent step to avoid misuse.

  • Difficulty
Start
Advanced

Discrete-Event Systems with AI

Sw2:academic01:obj:p1:k5sk6pbbqlle5nkbu7yqs5okj2n5dir5vxhzra2okrxr46nxkpja:36bdb4c9

1 h

A discrete-event automation process can be modelled and improved with AI for sequencing and throughput.

  • Difficulty
Start
Beginner

Drafting a Deed from Party Instructions

Sw2:academic01:obj:p1:x5quee4bpatc72b6ix5ssep7so5rkquve5pvor6cuh6ap4gwx5ka:0d1f3a15

1 h

turn an intake note into a first draft grounded strictly in the parties' stated terms.

  • Difficulty
Start
Beginner

What a Distributed Ledger Is

Sw2:academic01:obj:p1:qdkmj767kylzuot74657khpzr2jthe27w5b4eowuhqgjuj4yzmnq:69325389

1 h

A distributed ledger is a record shared and verified across many parties, with no single owner of the truth. That property is what makes it useful for trust.

  • Difficulty
Start
Advanced

Roles, Responsibilities, and Approval Processes

Sw2:academic01:obj:p1:b5idwct4nmph5s4kr5u7inf5qz55xzqw3pgpegklrf4vthjrluna:66924b26

1 h

Assigning clear ownership and approval steps for AI-supported people decisions.

  • Difficulty
Start
Advanced

Third-Party and Vendor Compliance Risk

Sw2:academic01:obj:p1:f6b277huwzerq2qw5v7u7my3s4sbeusyfi5zwm2h6uelnhmwn6aq:b2168609

1 h

Assessing and monitoring the compliance risk that third parties and vendors introduce into the business.

  • Difficulty
Start
Advanced

Auditing a Screening Tool for Adverse Impact

Sw2:academic01:obj:p1:srkzh3iziq7gx3pipqae52d3ajt7y42b6ncgs7ye6pdfwyebjhqa:4b34ae8e

1 h

Testing selection rates across groups before deploying a screening tool, to catch disparate impact early.

  • Difficulty
Start
Intermediate

Input Data Responsibility

Sw2:academic01:obj:p1:rh5dpv2zycmkghqehigzsode24tk5sdw2tu6vl5kh6pw3wti7ova:295bcfa0

1 h

When a deployer controls the data fed into a system, it becomes responsible for that data's relevance and quality for the system's purpose.

  • Difficulty
Start
Advanced

ESRS E1 Climate Change Disclosures

Sw2:academic01:obj:p1:j23cvqvyka6uwm3uebnlpqnlsemdwnjm6mokzv25e7di3vqv4dxq:8f53f9d5

1 h

Assembling the climate disclosures under ESRS E1, covering transition plans, targets, and greenhouse-gas metrics. It is the largest and most scrutinised topical standard.

  • Difficulty
Start
Intermediate

The Why Now Timing Test for an Idea

Sw2:academic01:obj:p1:xuymih6mhui22fvoivuf6i4hj4pbrwse42zdy2pg3mjn5irvlfaq:bb6dc6ad

1 h

An idea can be sound yet mistimed. The why-now test checks whether timing, cost curves, and technology maturity make it viable today.

  • Difficulty
Start
Intermediate

Decision Papers for Management

Sw2:academic01:obj:p1:nhiwi7wdwlnjz4dlmhppstfwrbaxkr265bmyutiwptgivqjibs6q:32f9e215

1 h

Structuring a decision paper that gives management clear options, the supporting evidence, and a recommendation.

  • Difficulty
Start
Advanced

The Capital-Markets-Facing Presentation

Sw2:academic01:obj:p1:62jhzzcoo7zhuhfp2qmdwcwyvduhnzl76se2e4bpwzafet2uitvq:bdf6e7e9

1 h

How to build a company presentation aimed squarely at a capital-markets audience and the questions it will bring.

  • Difficulty
Start
Intermediate

Why Standards Make Compliance Portable

Sw2:academic01:obj:p1:5nu5cre63nqcxa4m2zqyqzlhemw2uugvhjnp5yqgctwe7x65eahq:3ac1b645

1 h

A recognised standard lets an organisation carry a single compliance claim across markets and borders instead of proving itself anew each time. Portability is much of a standard’s value.

  • Difficulty
Start
Advanced

Intercompany Reporting Lines

Sw2:academic01:obj:p1:zt3biif42b3hi3ims6pzi4fgpt35r5r3opvhfsb4rtyb6gr3qiva:05344ea0

1 h

Subsidiary boards must report into group governance along clear lines. Defining them keeps the parent informed while preserving entity autonomy.

  • Difficulty
Start
Advanced

The High-Risk Exemptions

Sw2:academic01:obj:p1:fgohkfympin4lf2ycerkfegzxvj4qfqt5nhgwhjrvfpvngrbuuza:99a3ba64

1 h

A listed system can escape high-risk status under narrow conditions, for example when it performs only a minor procedural task. Applying these exemptions correctly requires care, since the bar is strict.

  • Difficulty
Start
Intermediate

Documenting Completion for Audit

Sw2:academic01:obj:p1:zzjfolzcvvkvwznqaka25quwoufz2hlf5sk7veuydxuktmbhmkka:ba100219

1 h

Keeping training-completion records structured and complete enough to withstand an external review.

  • Difficulty
Start
Advanced

Participation Governance from the Parent

Sw2:academic01:obj:p1:up5btpblenhv3namwb4ktrbgifxtnlzewekqngwvros65qjasjvq:8727a20c

1 h

A parent governs its holdings by steering their boards and decisions. Managing the portfolio keeps subsidiary value and risk under control.

  • Difficulty
Start
Beginner

Validating a Vendor Model You Cannot Open

Sw2:academic01:obj:p1:2ahf47jfk4zxa232wwjukm3cwwoufdtvnjxbk7jkqyywmzji555q:bd11882c

1 h

validate a bought model without access to its internals, using inputs, outputs, and documentation.

  • Difficulty
Start
Beginner

Matching Music to a Runtime

Sw2:academic01:obj:p1:ijsrkaetzjda4cggdotf4osxmg5zzywkdwq4qjdfsbzjuufr4wga:7d2b4ad5

1 h

A track can be fitted or trimmed to an exact duration cleanly so it aligns with a video or segment.

  • Difficulty
Start
Intermediate

Psychological Safety in AI-Augmented Teams

Sw2:academic01:obj:p1:sr6aokz4zp4nhbf7v37ch3hxqxdxp32jgbuwxcpv6rjmrbzjmbtq:b69e9110

1 h

Protecting the trust a team needs as AI enters its everyday work.

  • Difficulty
Start
Beginner

Model Documentation a Validator Accepts

Sw2:academic01:obj:p1:hent2dvuhzkufxw3yazioct3mqy7xsiligefkyoami3zgkm5y46q:65f5da50

1 h

Produce model documentation complete enough for an independent validator to work from.

  • Difficulty
Start
Advanced

Consistency Models for a Shared Ledger

Sw2:academic01:obj:p1:ormc6sg4fajjqe4mncwvnln2ocwvaqk5q5sezzth7xf6yl7g4vfq:ea1a3c12

1 h

A ledger can promise that every reader sees the latest record, or only that they will eventually agree. The choice shapes what a reader can trust at any moment.

  • Difficulty
Start
Beginner

Tax Structuring for Health Enterprises

Sw2:academic01:obj:p1:lki3oerenrav2gnpi2zrflxunzwpl7jhgixv3fhzlmhm5owqzssa:92ce23f1

1 h

plan tax-efficient structures for a care group.

  • Difficulty
Start
Intermediate

Structured Interview Support

Sw2:academic01:obj:p1:kdtho23u4l73fggvadaq4x55dfv6v53ghqj6sfg4ukh6ut3xpbma:5708e047

1 h

Generating role-specific, consistent interview questions and scoring guides so candidates are compared fairly.

  • Difficulty
Start
Beginner

Curriculum Design with AI

Sw2:academic01:obj:p1:mwwlprudfiqoxaig5k7sg7crfbwztrtkizck6car4gxnncmi2f3q:40f9671e

1 h

structure a curriculum and its learning outcomes with AI.

  • Difficulty
Start
Advanced

HR AI as High-Risk Under the AI Act

Sw2:academic01:obj:p1:bf36fuvufc6baba4hisxqqxixwbn7g43bxbrht6fmgv6ml7ae6pa:ee849328

1 h

Recruiting, scoring, and task-allocation tools fall under the AI Act's high-risk employment category and must be classified as such.

  • Difficulty
Start
Beginner

Supplying Just Enough Context

Sw2:academic01:obj:p1:ls3jplcrb6uttxxxqwef563r6au4y5txwxmjouumz62glqb5tgla:438e4c50

1 h

give the background a task needs without overloading the session.

  • Difficulty
Start
Advanced

The SFV Governance Model

Sw2:academic01:obj:p1:ztdyaseko7dweqqacmq5mbkj3zsggurkjlzu4mrsqtvovn6kivtq:47341c1b

1 h

Applying the Steuerbarkeit, Fairness, and Verantwortung model to AI-supported people decisions.

  • Difficulty
Start
Expert

Forensic Data Analysis

Sw2:academic01:obj:p1:d3ltu3a47spx5l5l6ft3q6w5fvpjemjng52yh6espiuyrw3xb6rq:4b3492bc

1 h

Analysing financial and transactional data forensically to test an allegation. Forensic analytics blends data skill with evidentiary rigour.

  • Difficulty
Start
Advanced

Internal Talent Marketplaces

Sw2:academic01:obj:p1:rpznebqllu2p6bnk53d6kupnqnh3mm6wvlgggdwe6k5w7qdipdca:aa4f4cf5

1 h

Matching people to internal gigs and projects using skill data instead of manager networks.

  • Difficulty
Start
Advanced

Employer Positioning in AI-Mediated Channels

Sw2:academic01:obj:p1:uav26shrbnqss24jrdhwieidffwbfarhvmat77ofxvbfrtsrmxoq:10b44470

1 h

Winning visibility where candidates increasingly use AI, not search engines, to research employers.

  • Difficulty
Start
Beginner

Kaplan-Meier Curves and Hazard Ratios

Sw2:academic01:obj:p1:zbcqe5awww2o4uqjyy6vkouqn7lyemitx6s2y4u6mwpjer7mumya:baad42d7

1 h

read survival curves and interpret hazard ratios.

  • Difficulty
Start
Advanced

Leveraged and High-Yield Finance

Sw2:academic01:obj:p1:as43kwtikjj5ztftz5x5expwkhc7s5jehdx23mnx2xr2l7uc33lq:b05f4b51

1 h

Reasoning about a leveraged financing package and the covenants that govern it, and what those terms constrain post-close.

  • Difficulty
Start
Beginner

Reporting Field Results Upward

Sw2:academic01:obj:p1:wjya4hzosiiltoay5jz2rrp3nrkci2jqjycnv4asrwkgd7pru4oq:0c2c0809

1 h

A day of scattered field records can be condensed into one concise report a supervisor or office can act on.

  • Difficulty
Start
Intermediate

Sensitivity Tables and Scenario Managers

Sw2:academic01:obj:p1:7lkd5vpxtzgxlxlmjnvqppuuaxrgjqy4k2mnj3hin2vg54a4zzka:f0b9156a

1 h

Building data tables and a scenario switch so a deal case can be flexed across assumptions on demand.

  • Difficulty
Start
Intermediate

Top-k and Top-p Sampling

Sw2:academic01:obj:p1:6zp5lppisbdk4sf7qyt4aqu4d7lte4zbpndru47ftbxguofghguq:026f0837

1 h

Top-k and top-p limit the pool of candidate tokens a model may pick from, shaping diversity and coherence.

  • Difficulty
Start
Intermediate

Rehearsing with an AI Investor Panel

Sw2:academic01:obj:p1:mwrksrrrc6tsvwunxljhgixztw6sj7vh5tfre7diycj5qf22glta:c5400c6f

1 h

Running a mock pitch against an AI panel and collecting adversarial feedback before facing real investors.

  • Difficulty
Start
Advanced

Leases Under IFRS 16

Sw2:academic01:obj:p1:h6qbjhldlusfeytyuhzpg7ctfjcmgci3j62b5ivkvd4iralrcbbq:2a93e650

1 h

IFRS 16 brings most leases onto the balance sheet. Recognising a right-of-use asset and a lease liability captures the economic substance of a lease.

  • Difficulty
Start
Advanced

Connecting Financial and Sustainability Statements

Sw2:academic01:obj:p1:m2bplmboydmmi3kh56wv7pxqille7aubf2fnkfuc7bjlywtfuxqq:decd47ba

1 h

Reconciling sustainability figures to the financial accounts so that, where the two overlap, they tell a consistent story. Connectivity is increasingly an explicit reporting expectation.

  • Difficulty
Start
Intermediate

Representation Bias

Sw2:academic01:obj:p1:cir6sgbs3a53tjs5qkxilkzug5efeqkzsu3oe2aeimmm6obuieua:86a6333f

1 h

When groups are under-represented or absent in data, a model serves them worse, and spotting these gaps is central to fairness.

  • Difficulty
Start
Advanced

Measuring Cost and Latency in Production

Sw2:academic01:obj:p1:riucjncar3hzx7qum2cvoe24q5bf6sroapjwnczqjh4ggyrza2ta:e0bb9bf7

1 h

Instrumenting a live AI feature to record what it actually costs and how fast it responds. Real measurement replaces guesswork once the feature is in users' hands.

  • Difficulty
Start
Beginner

Multilingual Deed Preparation and Translation Risk

Sw2:academic01:obj:p1:q7iixsswujwt7yrklqgieeucsos2wogppmyvhhaqmgcnkyxy3jjq:8049592b

1 h

manage the risks of AI translation in a deed where meaning must survive across languages.

  • Difficulty
Start
Beginner

Limits of Automation in Credit Decisions

Sw2:academic01:obj:p1:7rxg7drmxxrzpn6jy3teua2xhv55foseauh5erq7qb4teulyekia:7d37ece8

1 h

locate the point where a credit decision must return to a human.

  • Difficulty
Start
Intermediate

Training, Validation, and Test Splits

Sw2:academic01:obj:p1:nmdxucnfettvrglrkr4vy7isontkkaefx5gxpwahn5m6swtavwpq:2a97f38b

1 h

Data is split three ways so a model can be trained, tuned, and then judged on examples it never saw. Held-out data is what makes a performance claim honest.

  • Difficulty
Start
Beginner

Building Research Capability in a Team or Centre

Sw2:academic01:obj:p1:ndkvg44bfh6qd5sytkkvr7zwquo6zal7nikzsf3pt2merdigguuq:b6954ea5

1 h

grow a group's or centre's capacity to produce quality research.

  • Difficulty
Start
Intermediate

Idea Portfolio and Stage-Gates

Sw2:academic01:obj:p1:pd37jhaqumf4jxgkjtak6jizjwnh4rfkebe37brhilu473v7f2rq:44167e13

1 h

A portfolio of ideas is managed through gates that fund, hold, or kill each at set points. The method spreads risk and forces decisions.

  • Difficulty
Start
Beginner

The Latin Notariat and the Notary as Public Official

Sw2:academic01:obj:p1:wzpmltacqesqf4smknpd5q5l7wlqsytrdo3pqinxkcoag36j5bpa:c134eb48

1 h

explain the civil-law notary as an independent holder of public office, and why that office cannot be held by a machine.

  • Difficulty
Start
Intermediate

Consumer Product Ventures

Sw2:academic01:obj:p1:u267l7cfdprb3qxluuxk6l5i4on3pem3vxu3qbrg5lu2u63mtzyq:058797c5

1 h

Building and launching a consumer-facing product venture, from brand and channel to unit economics.

  • Difficulty
Start
Advanced

Audit Reporting and the Bestätigungsvermerk

Sw2:academic01:obj:p1:6plkmnm5uxkhna2aqdjift2a2yvyzbhvbubj4a2yap3lhs5h3brq:4dbff329

1 h

How to structure the audit opinion and understand exactly what each type of opinion commits the auditor to.

  • Difficulty
Start
Beginner

AI Bill of Materials (AIBOM)

Sw2:academic01:obj:p1:j4mr6leite27xxi5utu67nnsmcznnpmdkari3r2tcsbupls65vda:82591bfd

1 h

extend the bill of materials to models, datasets, and prompts.

  • Difficulty
Start
Advanced

Bewertungsgutachten as an Assurance Engagement

Sw2:academic01:obj:p1:eh4qr3zhufmozlwmzhn7fmutmbo6zx4lt2f65bkocg5sqt7eye3a:12e03785

1 h

How to deliver a valuation opinion to an assurance standard, documenting the basis so the conclusion is defensible and repeatable.

  • Difficulty
Start
Intermediate

The Mentor's Role Versus the Founder's Decision

Sw2:academic01:obj:p1:cljabbxfggqgufubgyycd3svvu2hshw7tvlna257i7uzerqga3pq:21ee7a4f

1 h

A mentor informs and challenges but must leave the decision with the founder. Holding that line is the discipline of good mentoring.

  • Difficulty
Start
Load 20 more

54 Modules

Beginner

AI, Explained from Zero

Sw2:academic01:obj:p1:3bhuaedelncgrkkwnodaclgofutjp6f5b6wetjduc3ngxclqgndq:13168ac8

6 lessons · 7 certificates

6 h · Learning Points: 96

Understand what AI, machine learning, and generative AI really are, in plain language and with no technical background.

  • Defining Artificial Intelligence
  • What Generative AI Is
  • Common Myths About AI
Start
Beginner

AI for Everyday Work

Sw2:academic01:obj:p1:mr5th7gnk5izirao4pkwavuwdnbgs2emhxjqvipbzbgletwrn5qa:2aa156a5

3 lessons · 4 certificates

3 h · Learning Points: 66

Apply AI to your correspondence, routine tasks, and the everyday tools you already use to get real work done faster.

  • Drafting Business Correspondence
  • Breaking a Task into Model-Sized Steps
  • Combining AI with Everyday Tools
Start
Beginner

Create with AI

Sw2:academic01:obj:p1:yx7fctx7o77a7cbedlyrpm3bnrirkb3tvoi3sl53zaecnjkfefba:9b2490fa

3 lessons · 4 certificates

3 h · Learning Points: 51

Draft text, generate your first image, and refine both to a professional standard with AI tools you can start today.

  • Editing for Clarity and Concision
  • Your First Generated Image
  • Writing an Image Prompt
Start
Beginner

How Language Models Work

Sw2:academic01:obj:p1:onbxynp6ttpbt3dm7rwzzdy5a5et5w7axrezaunofhcii5wgl77q:787d2395

3 lessons · 4 certificates

3 h · Learning Points: 66

See what happens inside a chat assistant: how tokens, prediction, and training combine to make it sound so fluent.

  • How Models Read Text as Tokens
  • How Next-Token Prediction Builds Sentences
  • The Context Window
Start
Beginner

Spot When AI Is Wrong

Sw2:academic01:obj:p1:glei2pt7genabqv3jv3xdntjeqbktca7w34ry5nomfywolbcn4ga:b9007131

3 lessons · 4 certificates

3 h · Learning Points: 45

Recognise fabricated answers and invented sources, and build the everyday habit of checking before you trust a reply.

  • What a Hallucination Is
  • Fabricated Sources and Citations
  • The Verification Mindset
Start
Beginner

Use AI Responsibly

Sw2:academic01:obj:p1:yszyliielsckxuyazljmpbzu4asuuituwmnk67tnl6sipcittukq:36782329

3 lessons · 4 certificates

3 h · Learning Points: 88

Understand the ethics and privacy limits of AI, and learn to recognise synthetic media so you can use it responsibly.

  • What AI Ethics Covers
  • Privacy by Design for AI Use
  • Recognising Synthetic Media
Start
Beginner

Your First AI Assistant

Sw2:academic01:obj:p1:qseoegujjgf4ali5sh7iivex65glhyasps7slxmwjsd2bhp43cta:38028745

3 lessons · 4 certificates

3 h · Learning Points: 50

Run a productive first session with an assistant and learn to write clear prompts that get you the result you want.

  • Running an Assistant Session
  • The Four Parts of a Prompt
  • Reading a Reply Critically
Start
Beginner

Fundamentals of AI business

Sw2:academic01:obj:p1:b5nmw5ztsnwcqsz7guvco2bgugvtthygbz47exhjmxyb7bj3v3na:98d2f509

14 lessons · 15 certificates

5 h 20 min · Learning Points: 596

How AI creates and destroys economic value in an organisation that competes, and how to read a proposal in those terms: where value lands, what makes an advantage hold, what it costs to keep rather than to build, and what a mistake costs.

  • Name the business problem first
  • AI changes tasks before it changes jobs
  • Cost, revenue, risk: where AI value lands
Start
Beginner

AI governance and the management system

Sw2:academic01:obj:p1:jsrp77afoom4v4flox35ylkom4ayzjw5zmrjlqt2ftbm5e4rtypq:40c1ada9

40 lessons · 41 certificates

12 h · Learning Points: 2006

Building the apparatus that decides and evidences in the officer's absence: the mandate and its limits, the inventory, decision rights and evidence standards, the incident and harm path, refusal, and the management system as a whole.

  • What a real mandate consists of
  • What stays with other people
  • Where you sit and who you can reach
Start
Beginner

Practical implementation of a live AI project

Sw2:academic01:obj:p1:ashda3nqlbapvwlwvoaix7cgmmwecuu4isjsdnf7skk25jdj2bba:a09ff0d8

0 lessons · 1 certificates

A defined AI implementation carried from concept to something that runs, with practitioners alongside, together with the governance, evaluation and legal artefacts the earlier parts taught. The integration point of the programme.

    Start
    Beginner

    Technical English for AI and technology governance

    Sw2:academic01:obj:p1:uzfwmh7vtjqhrutryss2dhuyr3ecs4p5cjkpidzericzbqpougma:5e39ad73

    0 lessons · 1 certificates

    The English the role actually has to survive: a supplier negotiation, an audit conversation, a regulator's question, a board's scepticism.

      Start
      Beginner

      Presentation and negotiation for AI projects

      Sw2:academic01:obj:p1:aohygfyvpqytqz622wpb55o3mmldb6nhn72lrx4prjrpop3skbma:c6294e74

      0 lessons · 1 certificates

      Presenting AI work to decision-makers and expert panels, negotiating, handling hostile questions, and holding a refusal under pressure.

        Start
        Beginner

        AI strategy and business models

        Sw2:academic01:obj:p1:xw3335dla6g3id6c3alm57azy56taabbkerrlonhh2p2njllbwcq:2cf0fc04

        15 lessons · 16 certificates

        4 h 40 min · Learning Points: 707

        Choosing where the organisation competes with AI and what it declines, how AI changes what it sells and on what economics, and how to commit to a direction before the capability is proven.

        • A strategy is what you decline
        • From ambition to an AI thesis
        • What this does to the industry, not only to you
        Start
        Beginner

        AI operations and management

        Sw2:academic01:obj:p1:uz7usltdb4mqme3srrr4i74r3psp4r7zmz2xcu7xh6gtyq26ocia:ea63a06b

        15 lessons · 16 certificates

        5 h 20 min · Learning Points: 713

        Running AI as a standing function rather than a series of projects: portfolio and funding cadence, benefit realisation, supplier control, adoption, and knowing when operating evidence has overturned the strategy.

        • Set the operating calendar
        • Intake and triage
        • Run the portfolio review
        Start
        Beginner

        Fundamentals of AI and machine learning

        Sw2:academic01:obj:p1:vfyl5q7mvgfwlzagkhqw4tosj7kmc7cbpw22xpgv7ofyr4divx4q:82b1556e

        27 lessons · 28 certificates

        9 h 20 min · Learning Points: 936

        How these systems work at the level where a non-engineer can reason about them, where their error comes from, and why they are attackable at all. Produces somebody who can ask the question that exposes a weak answer.

        • The words people use in the room
        • What learning from data actually means
        • Where the data came from, and what it leaves out
        Start
        Beginner

        AI system design and implementation

        Sw2:academic01:obj:p1:y2r62j3nf6kbepojzwjyieztrhkmfkic7thz25tigr5h35tz6qbq:300525d7

        29 lessons · 30 certificates

        10 h · Learning Points: 1289

        What an AI system consists of end to end, what working means for a given use and who sets that floor, how evaluation and human oversight are designed, and how to accept or refuse what a supplier delivers.

        • From a use case to a system boundary
        • The parts of an AI system, end to end
        • What "good enough" means for this use
        Start
        Beginner

        AI tools and platforms

        Sw2:academic01:obj:p1:ynk4r6tufzw4m3yufdls74xcco65u73i2rkpdy6mknyxgweltq4a:c0c08fd3

        25 lessons · 26 certificates

        7 h 20 min · Learning Points: 1137

        What a sourcing choice commits an organisation to: where the system runs, where models come from, how cost behaves as use grows, what lock-in actually consists of, and what a real exit requires.

        • The five things that actually differ between offers
        • Where the system runs, and what that decides
        • Whose ground it sits on
        Start
        Beginner

        International legal frameworks for AI

        Sw2:academic01:obj:p1:w633hfup4gsqoe76adwjls7t33wacqx3n4fuphfa6kffskesyw6a:b5770394

        24 lessons · 25 certificates

        7 h 20 min · Learning Points: 1095

        Placing a system inside the regulation that governs it: classification, the role the organisation occupies, the obligations that follow, and the point where it stops being the officer's own call. Taught as a method, since the applicable framework set varies by jurisdiction and sector.

        • The fact pattern you will keep reusing
        • What AI regulation is trying to do
        • Is this even an AI system in the legal sense
        Start
        Beginner

        Data protection rules and ethical aspects

        Sw2:academic01:obj:p1:tf655cjjyxgu5e4vsvzsgbff55vghkon7swmxvfgt3uhzu5utvea:d4f73b71

        26 lessons · 27 certificates

        10 h · Learning Points: 1347

        Lawful use of data in AI systems, the rights of the people in it, what transparency is owed, and the judgements that remain once the law is satisfied.

        • Map the data in the system
        • Is there personal data here at all
        • Lawful basis for using data this way
        Start
        Beginner

        Legal challenges in the use of AI

        Sw2:academic01:obj:p1:y2mikdobw54og5nnbezpuar27z2sbktzbnwco6ai63bfqgrbbbbq:d0c995a7

        24 lessons · 25 certificates

        6 h 40 min · Learning Points: 1216

        Where liability lands, what a supplier contract does and does not give you, intellectual property in both directions, employment consequences, and the documentation that answers a question two years later.

        • Where harm becomes liability
        • Your own exposure as the officer who signed
        • What a standard supplier contract does not give you
        Start
        Advanced

        AI Agents and Tool Use

        Sw2:academic01:obj:p1:z22yxymaw2r6qpi5e76bhesqlp4q3vzd3janmfcg35emhfehhvvq:5efd17ff

        3 lessons · 4 certificates

        3 h · Learning Points: 92

        Design agents, give them tools to act with, and set the guardrails for the points where autonomy tends to break down.

        • What an Agent Is
        • Giving a Model Tools to Act
        • Guardrails for Agents
        Start
        Advanced

        Build with AI APIs

        Sw2:academic01:obj:p1:j5e7bxandzw5ykmto5vcano3cch6whrk62afu5mfztrmjaomonda:1c0e8495

        3 lessons · 4 certificates

        3 h · Learning Points: 91

        Call a model API, handle keys and streaming, and integrate a language model cleanly into a real application of your own.

        • Making a Model API Call
        • Keeping API Keys and Secrets Safe
        • Streaming Responses from an API
        Start
        Advanced

        Fine-Tune and Evaluate

        Sw2:academic01:obj:p1:6znpb44qkatu6kvnn7r4ryvefec62ttgrhjv4ncx7oe73bbpbtyq:555b1aaf

        3 lessons · 4 certificates

        3 h · Learning Points: 117

        Decide between prompting, retrieval, and fine-tuning for your task, then measure with evaluations whether it worked.

        • Fine-Tuning a Base Model
        • Designing a Task-Specific Evaluation
        • Human Evaluation of AI Output
        Start
        Advanced

        Inside the Model

        Sw2:academic01:obj:p1:cwfrwjnd6im3ilruamrmqdkbkkuyxu3lfg6if6d4bmgee2afmwnq:dbd47fc7

        3 lessons · 4 certificates

        3 h · Learning Points: 84

        Understand transformers, how text generation actually happens, and the kinds of learning that shape a model.

        • Why Transformers Replaced Earlier Models
        • How a Model Generates Text
        • Supervised Learning
        Start
        Advanced

        Prompt Engineering in Depth

        Sw2:academic01:obj:p1:r44hvptucijvuunzgtqhhytthzxd63tw5wfh23vtaeljmmv3fvva:7e48c28a

        3 lessons · 4 certificates

        3 h · Learning Points: 73

        Master reasoning prompts, worked examples, and reusable templates that turn a capable model into reliable output.

        • Prompting for Step-by-Step Reasoning
        • Few-Shot Prompting with Examples
        • Prompt Templates and Variables
        Start
        Advanced

        Retrieval-Augmented Generation

        Sw2:academic01:obj:p1:lbyzmabxbx6vsclwomrpmjo6ls2jgsm6ug6zkpscoku23tizzika:16c49d8c

        3 lessons · 4 certificates

        3 h · Learning Points: 101

        Ground a model in your own sources with retrieval, and learn exactly where a RAG pipeline breaks and how to fix it.

        • Retrieving Relevant Chunks
        • Evaluating a RAG System
        • Bringing a Document into a Session
        Start
        Advanced

        Run Models Locally

        Sw2:academic01:obj:p1:trjnedsqu5hnco5ihikr7g3g7a7wyupgozalbfyorey7t6b7yo2a:3fd865a9

        3 lessons · 4 certificates

        3 h · Learning Points: 88

        Choose open-weight models, set up local inference, and weigh the trade-offs between your own hardware and the cloud.

        • Why Run a Model Locally
        • Hardware for Local Inference
        • Trade-Offs of Running Models Locally
        Start
        Expert

        AI and the AI Act

        Sw2:academic01:obj:p1:luufojotmd6m4eso7liwbdmggtrkehjn4abadqqp3qwbn6x5lprq:d0859e15

        3 lessons · 4 certificates

        3 h · Learning Points: 102

        Classify risk under the EU AI Act, apply the deployer duties it imposes, and design human oversight that holds up.

        • The Four AI Risk Tiers
        • Deployer Duties for High-Risk AI
        • What Meaningful Human Oversight Requires
        Start
        Expert

        AI for Auditors

        Sw2:academic01:obj:p1:bvbud5mmqtncigs5nzmx7e5etujexaw27a7sl6bmm325rzllcslq:00b38188

        3 lessons · 4 certificates

        3 h · Learning Points: 134

        AI applied to Wirtschaftsprüfung: gathering evidence, sampling, and testing at full-population scale without losing rigour.

        • The Purpose of Journal Entry Testing
        • Statistical Versus Judgemental Sampling
        • Assuring AI-Generated Sustainability Disclosures
        Start
        Expert

        AI for Corporate Finance

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        3 lessons · 4 certificates

        3 h · Learning Points: 147

        Valuation and modelling with AI, including how to value the intangible assets that AI itself increasingly helps to create.

        • Building a DCF from Scratch
        • Why Intangibles Escape the Balance Sheet
        • Reconciling Multiples with a DCF
        Start
        Expert

        AI for Creators

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        3 lessons · 4 certificates

        3 h · Learning Points: 62

        AI for content work: short-form video, personal branding, and scripts that still sound like you rather than a generic model.

        • The First-Second Hook in Video
        • Talking-Head Scripts That Sound Like You
        • Adapting One Script to Three Platforms
        Start
        Expert

        AI for Legal Practice

        Sw2:academic01:obj:p1:finxbp3io45ougsvvzpbpa6jmpliprcts5dj3i5lhz3fbuu6pt5a:13961e03

        3 lessons · 4 certificates

        3 h · Learning Points: 117

        Analyse contracts, ground your research in real legal authority, and reliably reject fabricated case law before you cite it.

        • What AI Contract Analysis Can and Cannot Do
        • Detecting Fabricated Case Law
        • An AI-Assisted Legal Research Workflow
        Start
        Expert

        AI for Tax Advisors

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        3 lessons · 4 certificates

        3 h · Learning Points: 118

        AI applied to Steuerrecht: subsumption, VAT on mass transactions, and catching invented citations before they reach a file.

        • Reading a Tax Statute with AI Support
        • Detecting a Fabricated Tax Citation
        • German VAT Fundamentals for AI Workflows
        Start
        Expert

        AI in the Boardroom

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        3 lessons · 4 certificates

        3 h · Learning Points: 119

        AI for directors: board-level oversight of AI systems and the governance that holds up under scrutiny and accountability.

        • Board-Level Oversight of AI Systems
        • Governance Codes and Comply-or-Explain
        • Reading AI-Generated Board Reports Critically
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        6 Programmes

        Programme

        Chief AI Officer

        Sw2:academic01:obj:p1:bu7mfkdmnrqmrlawwi4enljop7kvj2aqqnnsl2gnbm4vck4c36mq:494a62ed

        Builds the person an organisation holds accountable for its AI: what it does with AI, on what evidence, within what rules, and at what risk. Seven parts and thirteen modules, of which ten are self-learning and three are taught live with a human counterpart, completed with an oral examination.

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        Background

        Experience and context

        Education and professional work that shape this creator's modules.

        About

        • Works across AI methodology, company valuation and doctoral supervision

          Supervises PhD and DBA candidates at EQF level 8, and teaches how a method is specified, how its effect on company value is measured, and how it is defended.

        Education

        • Doctor of Philosophy (PhD), Business Administration and ManagementUniversity of Graz

          Doctoral research in business administration and management.

        • Master of Business Administration (MBA), Change ManagementUniversity of Augsburg

          MBA programme with a focus on change management.

        • Master of Science (M.Sc.)

        Industry

        • AI strategy, multi-agent architectures and distributed ledger technology
        • Designs enterprise AI systems whose architecture answers regulatory and organisational requirements

          Covers how an architecture is documented, controlled and reviewed so it can be examined after the fact.

        • Designs and builds enterprise AI systems in practice

          Works as a practising architect alongside teaching, so the material comes from systems that run.

        Workshops

        • Delivers the AI components of consulting engagements and professional training

          Teaches practitioners inside client organisations, which is where the module material is tested before it is written down.

        Media

        • Cited by Forbes as an AI expert (2024); keynote speaker on AI innovation and AI business models

        Ventures

        • Founder of BlackAI, the Swissi Academy for AI and other AI ventures

        Languages

        • Teaches in German and English

        Career

        • Professor, supervising AI doctoral candidates at EQF level 8

          Supervises PhD and DBA candidates at EQF level 8.

        • Head of the Advanced AI Studies faculty

        Research

        Research work

        Current themes, academic supervision and review work.

        Walter Kurz researches regulated AI systems for finance, higher education and energy; verifiable AI infrastructure with distributed ledgers, identity assurance and audit trails; AI integration in company valuation, disclosure, risk management and ESG; compliance applications for websites, finfluencing, lending, data centres and critical infrastructure; and AI governance topics including Hans Jonas ethics, healthcare ethics, autonomous economic agents and model attribution.

        Walter Kurz; Reinhard Magg2025 · Swissi Academy for AI
        Tiered compliant AI system for regulated financial institutions

        Multi-agentic execution-capable framework with built-in DLT audit trails for financial operations in DACH

        Walter Kurz; Michel Malara; Wojtek Stricker2025 · Swissi Academy for AI
        A regulatory-compliant AI and verification system for higher education under ESG-aligned constraints
        Walter Kurz; Michel Malara; Velimir Dedić2025 · Swissi Academy for AI
        Federated AI Infrastructure with Verifiable Storage and ESG Integration

        Swiss-compliant federated AI DLT network using Nash equilibrium and ESG metrics

        Walter Kurz; Michel Malara; Velimir Dedić2025 · Swissi Academy for AI
        Generic Agnostic AI and Distributed Ledger Enterprise System for Scalable Domain Adaptation

        Architecture and methodology for vertical-specific AI deployment from a unified core framework

        Walter Kurz2025 · Swissi Academy for AI
        Formal Multi-Agent AI System Architecture

        Generic AI framework development under Solvency II and AI Act in Austria and Germany

        Walter Kurz2026 · Swissi Academy for AI AG
        AI Integration and the Firm

        Valuation, Risk, and Disclosure. Call for Co-Authors, Three-Paper Research Agenda

        Walter Kurz; Wojtek Stricker; Stefan Marx; Frank Reinhardt; Florian Kollberg2026 · Swissi Academy for AI
        Firm Valuation When AI Shapes the Business Model

        A milestone-based real-options framework for the AI valuation uncertainty problem

        Walter Kurz; Wojtek Stricker2026 · Swissi Academy for AI
        Functional Architecture of European Electricity Trading Markets

        Requirements for AI-supported trading systems under regulatory constraints

        Walter Kurz; Wojtek Stricker2026 · Swissi Academy for AI
        AI-supported supervision of websites of authorised institutions by financial market supervisory authorities

        A conceptual framework from supervisory practice in Switzerland, Germany and Austria

        Walter Kurz; Wojtek Stricker2026 · Swissi Academy for AI
        Legally compliant finfluencer activities through AI-supported compliance review

        A specialised multi-agent framework for investor protection in Switzerland, Germany and Austria

        Walter Kurz; Reinhard Magg2026 · Swissi Academy for AI
        Greenwashing Risk Perception along the ESG Value Chain

        A qualitative study at investment firms and supervisors in Switzerland, Germany and Austria

        Walter Kurz2026 · Swissi Academy for AI
        Context Substitution in Large Language Model Risk Assessment

        A methodological and legal framework for pre-judgment and reputational externalities in Switzerland, Germany and Austria

        Walter Kurz; Reinhard Magg; Stefan Marx; Frank Reinhardt; Florian Kollberg2026 · Swissi Academy for AI
        Multi-Agent AI as a Nested Principal-Agent Problem in Private Wealth Management

        Bargaining-based suitability and context control under the legal framework of Switzerland, Germany and Austria

        Walter Kurz2026 · Swissi Academy for AI
        Multi-Jurisdictional Legal Identity Assurance for Capability Gating

        A design-science proposal for tiered, reusable identity assurance of natural, juridical and machine entities

        Walter Kurz2026 · Swissi Academy for AI
        Credentials and Triangulated Trust Signals on a Single Accountable Identifier

        A hash-anchored distributed-ledger framework for portable identity across jurisdictions

        Walter Kurz2026 · Swissi Academy for AI
        Identity-Staked Consensus and Collusion Resistance in Chartered Validator Sets

        A trust model for decentralised and compliant distributed settlement infrastructure

        Walter Kurz2026 · Swissi Academy for AI
        Bounded Mandates and Durable Model Attribution for Autonomous Economic Agents

        A distributed-ledger framework for revocable delegated authority under accountable identity

        Walter Kurz; Wojtek Stricker2025 · Swissi Academy for AI
        Multi-Agent AI for ESG-Tracked Energy Production and Trading on a Decentralised DAG-Based Ledger
        Walter Kurz2025
        Generic Multi-Agent AI Framework for Weighted Dynamic Corridor Price Optimisation
        Konrad Stromeyer; Walter Kurz2025
        Weighted Dynamic Corridor Price Optimization

        Optimizing pricing strategies in capital goods SMEs: a weighted dynamic corridor approach to cost-plus and value-based pricing

        Walter Kurz; Reinhard Magg; Konrad Stromeyer2025
        Financial and Operational Impacts of Regulatory Compliance on the Austrian Securities Industry
        Thomas Joswig; Walter Kurz2025
        Regulatory and Compliance Requirements for SMEs Operating AI Systems through Data Centers in the EU, with a Focus on Data Protection Challenges in Germany
        Tobias Nebgen; Walter Kurz2025
        Generation Z

        AI affinity and adoption in competitive German organisations

        Thomas Joswig; Walter Kurz2025
        Empirical Analysis of NIS2 Adoption in EU SMEs

        Challenges for critical infrastructure in Germany

        Konrad Stromeyer; Walter Kurz2025
        AI Driven Dynamic Pricing and Optimisation in Gold Trading with Nash Equilibrium and Machine Learning Techniques
        Walter Kurz2025
        AI-Enabled Certified MiFID-, MiCA-, EMD2-, and CRR-Compliant Decentralised Asset Management Ecosystem

        With regulatory authority oversight functions, ESG tracking and systemwide non-custodial KYC

        Walter Kurz2025
        Empirical Analysis of Gender Agnosticism in AI-Based Executive Screening

        Identifying and classifying gender indicators in CV data

        Walter Kurz2025
        The Hippocratic System Rewritten

        Formal models for AI ethics in healthcare

        Walter Kurz2025
        Mathematical Model for Grid and Energy Optimisation of Phoenix AI Power Data Centres in Southeast Europe
        Walter Kurz2025
        Optimising power source allocation for hydrogen production across different observation periods
        Walter Kurz2025
        Risk assessment in retail lending in DACH with multi-agentic AI systems
        Walter Kurz2025
        Risk assessment in corporate lending in DACH with multi-agentic AI systems
        Michel Malara; Walter Kurz2025
        Revisiting Responsibility

        Hans Jonas' ethics as a normative foundation for AI governance

        Walter Kurz; Michel Malara2025
        Empirical Integration of Hans Jonas' Ethics of Responsibility into AI Governance

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