Fairness In Generative AI A Practical Guide To Benchmarking Bias Mitigation And Responsible AI Engineering

Fairness In Generative AI A Practical Guide To Benchmarking Bias Mitigation And Responsible AI Engineering

Fairness in Generative AI
by Prasanna Vijayanathan

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ISBN:Publisher: Packt • Year: 2026
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📂 [color=#ff5555]Category: Computer Technology, Nonfiction
🌐 [color=#55acee]Language: English

Description: Build responsible AI systems with practical fairness benchmarks. Turn fairness principles into measurable requirements using metrics, human review, AI governance, CI gates, and drift monitoring across text, image, and multimodal AI. Key Features Turn generative AI fairness principles into testable responsible AI requirements
Build benchmarks and metrics for LLMs, image models, and multimodal generative AI
Operationalize AI governance with human review, CI gates, drift monitoring, and scorecards
Apply AI ethics to identify harms, evaluate trade-offs, and guide model releases
Book DescriptionA child asks an image model for a picture of a soccer player and gets a boy, every time. Across hiring, lending, education, and healthcare, fairness in generative AI can affect opportunity, dignity, and trust. This practical guide shows you how to measure fairness and build responsible AI practices across LLMs, image models, and multimodal generative AI systems. Move from AI ethics and fairness principles to engineering artifacts you can test and defend. Define harms and sensitive attributes, decide whose experience is in scope, and translate fairness trade-offs into measurable requirements. Then build a modular benchmarking framework for your ML and MLOps pipelines using versioned scenario and prompt libraries, quantitative metrics, qualitative rubrics, and human review. Put AI governance into practice by publishing actionable scorecards and dashboards, adding fairness checks to CI and release gates, monitoring drift, and preparing incident-response playbooks. Keep evaluation meaningful as models, data, and expectations change. A running soccer image-generator case connects the concepts to implementation, showing how responsible AI engineering moves from principles to measurable production controls.What you will learn Turn fairness principles into testable requirements for generative AI
Map harms to representational, allocative, and procedural checks
Design versioned scenario and prompt libraries that protect real data
Implement fairness metrics for text, image, and multimodal AI outputs
Apply human review with rater training and inter-rater agreement
Publish scorecards and dashboards stakeholders can act on
Gate model releases on fairness and monitor drift in production
Run incident-response playbooks that keep benchmarks credible
Who this book is for This book is for people who build, ship, evaluate, and govern generative AI. ML and data engineers, application developers shipping LLM features, and responsible AI, trust-and-safety, and security engineers will gain hands-on value. Product managers and engineering leaders will develop a shared language for AI governance, while policymakers, regulators, researchers, standards contributors, and civil-society advocates will find structured ways to scrutinize deployed systems. A working grasp of ML evaluation and Python is all you need.
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