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The AI strategy for decision-makers and managers

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KIROI - Artificial Intelligence Return on Invest: The AI strategy for decision-makers and managers

KIROI - Artificial Intelligence Return on Invest: The AI strategy for decision-makers and managers

Start » AI Model Risk Management (Glossary)
25 March 2025

AI Model Risk Management (Glossary)

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AI Model Risk Management is primarily at home in the areas of Artificial Intelligence, Big Data and Smart Data, as well as automation. Companies are increasingly using AI models to automate processes or support decisions. However, this creates specific risks, for example, errors in the model, biased results due to poor data, or unsafe decisions.

AI Model Risk Management describes all the methods and measures that companies use to recognise, assess and manage these risks. The aim is to use AI models as safely and reliably as possible. This is achieved through thorough testing, regular checks of the data and clear guidelines on how the models may be used.

A simple example: a bank uses an AI model to decide who to lend to. However, if the model only recognises incomplete or incorrect data, good customers could be rejected. With AI Model Risk Management, the bank regularly checks the model and ensures that it is working fairly and sensibly. In this way, AI Model Risk Management protects companies from making costly mistakes and losing the trust of their customers.

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