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Building an AI agent can feel simple at first-until prompts fail, tools break, memory becomes unreliable, and the agent starts making decisions you did not expect.
The Practical Guide to Agentic AI shows you how to design, develop, test, and scale LLM-powered autonomous agents without getting lost in vague explanations, scattered tutorials, or trial-and-error mistakes.
Agentic AI goes beyond ordinary chatbots. These systems can plan tasks, use tools, retrieve information, remember context, make decisions, and complete multi-step workflows. But creating an agent that works reliably requires more than connecting an LLM to an API.
This book explains the full process in clear, everyday language. You will learn how AI agents reason, how agent control loops work, how memory and retrieval should be designed, and how tools can be connected safely. You will also see how to add guardrails, permissions, human approval, evaluation, observability, and secure data handling.
Whether you are a developer, technical founder, product manager, automation specialist, or AI enthusiast, this guide will help you move from a basic prototype to a dependable production system. The methods are practical, tested, and focused on problems that appear in real projects.
What's Inside This Book?
You will also find step-by-step explanations, practical examples, architecture diagrams, checklists, implementation guidance, and clear illustrations that make difficult ideas easier to understand.
Written from the perspective of an experienced technical educator and systems practitioner, this book focuses on methods that can be applied to real AI products-not just impressive demonstrations.
Do not wait until unreliable agents, rising costs, or unsafe tool access force you to rebuild your system.
Get The Practical Guide to Agentic AI today and start creating LLM-powered autonomous agents that are useful, controlled, secure, and ready to scale.
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