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Summary
Introduction
- [Red Teaming AI & LLMs: The Consultant's Complete Handbook](AI LLM Red Team Handbook.md)
Part I: Foundations
- Chapter 1: Introduction to AI Red Teaming
- Chapter 2: Ethics, Legal, and Stakeholder Communication
- Chapter 3: The Red Teamer's Mindset
Part II: Project Preparation
- Chapter 4: SOW, Rules of Engagement, and Client Onboarding
- Chapter 5: Threat Modeling and Risk Analysis
- Chapter 6: Scoping an Engagement
- Chapter 7: Lab Setup and Environmental Safety
- Chapter 8: Evidence, Documentation, and Chain of Custody
Part III: Operational Workflows
- Chapter 9: Writing Effective Reports and Deliverables
- Chapter 10: Presenting Results and Remediation Guidance
- Chapter 11: Lessons Learned and Building Future Readiness
Part IV: Technical Fundamentals
- Chapter 12: Retrieval-Augmented Generation (RAG) Pipelines
- Chapter 13: Data Provenance and Supply Chain Security
Part V: Attacks & Techniques
- Chapter 14: Prompt Injection (Direct/Indirect, 1st/3rd Party)
- Chapter 15: Data Leakage and Extraction
- Chapter 16: Jailbreaks and Bypass Techniques
- Chapter 17: Plugin and API Exploitation
- Chapter 18: Evasion, Obfuscation, and Adversarial Inputs
- Chapter 19: Training Data Poisoning
- Chapter 20: Model Theft and Membership Inference
Reference Materials
- [Appendix A: Red Team Tools, Resources, and Further Reading](AI LLM Red Team Handbook.md#appendix-a-red-team-tools-resources-and-further-reading)