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Book Overview & Buying
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Table Of Contents
Model Context Protocol for LLMs
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I've always believed that security in AI systems isn't just about keeping the bad guys out; it's about ensuring that the intelligence itself can be trusted.
I've been thinking about security for most of my career, but AI security? That's a whole different beast. Traditional security models were designed for predictable systems with well-defined boundaries and clear chains of responsibility. AI systems, especially distributed ones such as those built with MCP, challenge every assumption we've made about how security should work.
The first time I had to secure an MCP deployment, I started with the usual playbook: authentication, authorization, encryption, and audit logs. Standard stuff. But as I dug deeper, I realized that AI systems create security challenges that traditional approaches simply weren't designed to handle. When an AI agent makes autonomous decisions about what data to access and what actions to take...