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Category: "Agentic Engineering"

Books

  1. Securing Enterprise AI Agents
    Securing Enterprise AI Agents
    A Field Guide to Bounded AI Autonomy, AgentSecOps, and MCP Security
    Thomas De Vos

    How to put AI agents in production without ending up in the news. A field guide to bounded AI autonomy, MCP security, and AgentSecOps.

  2. MCP na Prática
    MCP na Prática
    Servidores, Tools e Integrações com Model Context Protocol
    CAIO INCAU

    Construa servidores MCP do zero — do protocolo ao deploy em produção. Aprenda Tools, Resources, Prompts, transporte HTTP, autenticação, testes e composição de servidores. 14 capítulos, um projeto real, código TypeScript completo.

  3. Mastering Claude Code
    Mastering Claude Code
    From terminal to production with AI-assisted development
    CAIO INCAU

    Master Claude Code from zero to production. Build a complete full-stack app across 18 chapters — learning CLAUDE.md, Plan Mode, Skills, Hooks, MCP servers, subagents, the Agent SDK, CI/CD, and security best practices along the way.

  4. Construindo AI Agents do Zero com Python

    Construa um AI agent completo do zero — de uma chamada simples à API até um sistema multi-agente em produção com memória, planejamento, RAG, segurança e deploy. 15 capítulos, um projeto real, código Python completo.

  5. Hermes Agent: The Self-Evolving AI Workforce
    No Description Available
  6. OpenClaw and Hermes for Agentic AI

    What if agentic AI was less about hype and more about work you can actually inspect?OpenClaw and Hermes for Agentic AI is a practical field guide to building with local agents, memory, tools, sessions, cron jobs, and ACP bridges. It shows how to turn fuzzy ideas into reliable workflows with clear boundaries, real artifacts, and human review where it matters most.If you want a grounded look at how agent systems really operate, this book starts there.

  7. AI Systems Interviews for Senior Engineers
    AI Systems Interviews for Senior Engineers
    Land L5/L6 Roles
    Sumeet Kumar

    Most senior engineers don't fail AI systems interviews from lack of ability—they fail because they sound like builders when they need to sound like staff. This book gives you the answer flow, the system deep dives (RAG at billion-doc scale, agentic pipelines, token-cost tradeoffs), and the behavioral stories that earn L5/L6 offers at AI-first companies. Built for senior engineers targeting Staff AI Systems roles in the next 8 to 12 weeks.

  8. Agentic Engineering
    Agentic Engineering
    From Execution to Orchestration
    Narayanan Jayaratchagan

    You have been using AI as a faster keyboard.The engineers who will define the next decade are using it as a cognitive workforce they direct, constrain, and govern. The gap between those two practices is not a matter of better prompts. It is a matter of an entirely different mental model.This book is that mental model. Built from first principles. Illustrated through 28 chapters of real architectural decisions, real failures, and real production systems.From execution to orchestration. The complete practitioner guide.

  9. Swift + OpenAI & LangChain
    Swift + OpenAI & LangChain
    Integrating external LLM APIs, RAG pipelines, and agentic workflows in iOS and macOS apps
    Edgar Milvus

    Master AI integration on Apple platforms by bridging Swift 6 with OpenAI, LangChain, and autonomous agents. Build high-performance RAG pipelines using hardware-accelerated vector math and persistent local semantic memory. Architect thread-safe, real-time apps with strict concurrency, intelligent function calling, and efficient token streaming. Move from basic API calls to production-grade intelligence with the definitive guide for modern Apple developers.

  10. THE AI: PROVENANCE STACK
    THE AI: PROVENANCE STACK
    Verifiable Origin in the Age of Synthetic Output
    Fabian Rose
    No Description Available
  11. Self-Healing Infrastructure: Building Autonomous Cloud Systems with AI

    Most writing about AI and infrastructure stops at the demo. This book starts on the day the model is confidently wrong at 3 a.m. and an auditor asks who authorised the action it took. Seven working labs — MCP servers with real identity and audit, closed-loop remediation behind a reversibility gate, and autonomy that can be revoked — for platform engineers in safety-critical and regulated industries.

  12. Android AI Agents. Building autonomous apps that use Tool Calling, Function Injection, and Screen Awareness to perform tasks for the user

    Stop building chatbots and start building agents that interact directly with the Android OS. Master Gemini Nano and AICore to architect autonomous systems that see, think, and take action. Implement production-ready Tool Calling, Screen Awareness, and the ReAct loop using Kotlin 2.x. Move beyond the API call—embrace the Agentic Era and build the future of mobile intelligence.

  13. Cut Your Claude Code Token Usage in Half
    Cut Your Claude Code Token Usage in Half
    48 diagnostic symptoms for Claude Code cost: context window bloat, subagent cost, MCP server overhead and cache misses — what each looks like and what to change.
    yurukusa

    Claude Code users routinely spend more on tokens than they expect, and cannot see where the money goes. Chapter 8 catalogues 48 diagnostic symptoms — what each one looks like, what it costs you, and what to change — with a fix where a fix exists, and an honest "unresolved" where none does yet. Chapter 7 puts before-and-after numbers against the changes, measured on the author's own unattended runs, and Chapter 9 collects the settings templates.

  14. Architecting Production-Ready Gen AI and Agentic AI Systems
    Architecting Production-Ready Gen AI and Agentic AI Systems
    A Practitioner’s Guide to Architecture, Retrieval, Agents, Evaluation, Security, Governance, FinOps, and Production Operations
    Srinivas Bommena

    An AI system becomes an architecture problem when it can influence decisions, invoke tools, carry state or change the outside world. This practitioner playbook shows how to design Gen AI and Agentic AI systems that remain reliable, governable and defensible once they reach production.

  15. MCP Integrations for Microsoft 365
    MCP Integrations for Microsoft 365
    Design practical AI workflows with Excel, Word, and various MS Office tools using Model Context Protocol
    GitforGits | Asian Publishing House

    I strongly recommend this book to developers, platform engineers, and technical architects who work with Microsoft 365. These professionals will learn to integrate AI-assisted workflows into existing business processes without unnecessary complexity.