Red Teaming Generative AI

Red Teaming Generative AI

by Daniel Mercery
Publication Date: 03/01/2026

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Generative AI systems introduce new attack surfaces that traditional security testing does not cover. Red teaming is essential to uncover how large language models fail under adversarial conditions.


Red Teaming Generative AI is a hands-on guide for security testers and engineers tasked with identifying weaknesses in LLM-based systems. The book focuses on practical testing techniques rather than theory, providing repeatable exercises that mirror real-world attack scenarios.


It explains how to structure red team engagements specifically for generative models and how to translate findings into actionable risk decisions.


Readers will learn how to:



  • Design red team scopes for LLM-powered applications

  • Execute prompt injection, jailbreak, and data extraction tests

  • Evaluate model behavior under adversarial inputs

  • Define metrics for model robustness and failure severity

  • Document findings using clear, repeatable reporting formats

  • Communicate results to engineering and risk stakeholders


This book equips practitioners with the tools needed to proactively test generative AI systems before attackers do.

ISBN:
9798233289859
9798233289859
Category:
Computer programming / software development
Publication Date:
03-01-2026
Language:
English
Publisher:
​Daniel Mercery

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