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Gallese: Banks are removing humans from risk assessment claiming computers can do the job. They are wrong.

Tuesday, 6 January, 2026 - 08:10

Major banks are about to cut 200,000 jobs. But the real reason is not AI* as they claim. And it's not a financial crisis either.

It's because banks are replacing the internal systems designed to slow risk down, says Chiara Gallese, Ph.D
 

That distinction matters.

According to Morgan Stanley, up to 10% of the workforce across major European banks could disappear by 2030.

The cuts won’t hit traders or CEOs.

They’ll hit: 
– back-office
– risk management
– compliance
– internal controls

The parts of the bank most people never see.

And that’s exactly the problem.

It's different from “AI replacing jobs”. This is management replacing institutional judgement.

Let me explain why that’s a systemic risk.

1. Risk functions exist to slow decisions down

Risk management and compliance are not about speed.

They exist to: 
– question assumptions
– amplify doubts
– force humans to explain decisions

Automation flips that logic.

AI systems optimise for: 
– speed
– stats
– pattern recognition

Not moral judgement.
Not context.
Not dissent.
And not compliance.

When all of this is automated, judgement becomes optional.

2. Automation erases the learning pipeline

A JPMorgan executive warned about this explicitly:

If junior bankers never learn the fundamentals, the system loses its memory.

Literally.

Risk expertise is apprenticeship-based: 
– you learn by reviewing edge cases
– by seeing mistakes
– by staying updated
– by watching senior judgement under pressure

If AI absorbs that layer, future leaders never learn how risk actually forms.

You don’t just lose jobs. You lose institutional understanding.
 

Dr Chiara Gallese is on LinkedIn 

 

3. Efficiency gains hide delayed failures

AI can seem to improve operational efficiency by 30%.

That’s their selling point.

But risk management failures don’t appear immediately. They compound slowly.

Automation makes systems *appear* safer: 
– fewer alerts
– no pushbacks
– faster approvals

Until one assumption breaks.

And when it does, fewer humans will know how to intervene.

4. This is the same pattern we keep seeing in AI deployment

Different sector. Same playbook:

– risk management automated
– human oversight reduced
– escalation paths flattened
– accountability pushed downstream
– safeguards follow deployment

We saw it in: 
– content moderation
– algorithmic advertising
– automated decision-making

Banking is just the next critical infrastructure layer.

AI is not the problem here, it's just an excuse for bad decisions.

And we must look further:

Who will suffer the consequences when AI-driven risk management fails?

When: 
– models approve what humans would flag
– compliance becomes a checkbox
– new risks ate ignored
– and no one remembers why controls existed in the first place

European banks are re-architecting how risk is understood, challenged, and mitigated.

Once that shift is normalised, rebuilding human judgment is far harder than automating it.

And clients will bear the costs.
 


  • Editor's note: Dr. Gallese uses the common term "AI" which WMLR and its associated activities reject because machines cannot be intelligent.  It's been included here for the sake of continuity. 

critical thinking from financial crime training

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