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Practical AI Security (A Hands-on Guide to Attacking, Defending, and Securing Modern AI Systems)
List Price:
$59.99
| Expected release date is Jun 9th 2026 |
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Product Details
Author:
Harriet Farlow
Format:
Paperback
Pages:
392
Publisher:
No Starch Press (June 9, 2026)
Imprint:
No Starch Press
Release Date:
June 9, 2026
Language:
English
Audience:
General/trade
ISBN-13:
9781718504660
ISBN-10:
1718504667
Weight:
25.2oz
Dimensions:
6.94" x 9.25" x 0.88"
File:
RandomHouse-PRH_Book_Company_PRH_PRT_Onix_delta_active_D20260416T013809_155943845-20260416.xml
Folder:
RandomHouse
List Price:
$59.99
Country of Origin:
United States
Pub Discount:
65
Case Pack:
20
As low as:
$46.19
Publisher Identifier:
P-RH
Discount Code:
A
QuickShip:
Yes
Overview
Break AI Systems. Then Secure Them.
If you’re a security practitioner learning to operate in AI environments, or an ML engineer who needs to understand what adversaries actually do, Practical AI Security gives you the technical foundation the field demands.
Built from first principles, this book takes you from how models fail to how they’re exploited to how they’re defended and audited. Every technique includes clear explanations and real-world examples, and you can run the attacks and defenses yourself with over 30 hands-on Python demos.
Whether you use, build, deploy, or oversee AI, this isn’t niche knowledge—it’s the foundation for defending the technologies that will define the next era of human progress.
If you’re a security practitioner learning to operate in AI environments, or an ML engineer who needs to understand what adversaries actually do, Practical AI Security gives you the technical foundation the field demands.
Built from first principles, this book takes you from how models fail to how they’re exploited to how they’re defended and audited. Every technique includes clear explanations and real-world examples, and you can run the attacks and defenses yourself with over 30 hands-on Python demos.
- Understand how different kinds of machine learning models create unique vulnerabilities, and explore how these models are integrated into more autonomous, agentic AI systems to introduce new weaknesses and risks.
- Identify, exploit, and defend against dozens of weaknesses and attacks across the AI life cycle, including data poisoning, model theft, and prompt injection.
- Evaluate AI systems for safety failures, bias, and alignment risks using structured benchmarking.
- Threat-model agentic systems, RAG pipelines, and multimodal architectures using MITRE ATLAS, OWASP, and the MAESTRO framework.
- Design and execute AI-specific red teaming campaigns, and understand what makes them distinct from traditional security tests.
- Conduct rapid risk audits and navigate AI governance frameworks for real deployments.
Whether you use, build, deploy, or oversee AI, this isn’t niche knowledge—it’s the foundation for defending the technologies that will define the next era of human progress.









