Preface
As practicing data scientists, we have seen first-hand how AI models play a significant role in various aspects of our lives. However, as the cliche goes, with this power comes the responsibility to ensure that these decision-making systems are fair, transparent, and trustworthy. That’s why I, along with my colleague, decided to write this book.
We have observed that many companies face challenges when it comes to the governance and auditing of machine learning systems. One major issue is bias, which can lead to unfair outcomes. Another issue is the lack of interpretability, making it difficult to know whether the models are functioning correctly. Finally, there’s the challenge of explaining AI decisions to humans, which can lead to ...
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