Show Notes
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#LLMbasedautonomousagents #agenticpromptengineering #RetrievalAugmentedGeneration #knowledgegraphintegration #agentsafetyandgovernance #AgenticAIEngineering
Agentic AI Engineering: Systems That Reason and Act Autonomously - Designing, Building, and Prompting LLM-Based Agents for Real-World Deployment by Hyun Erwin is a technical guide to building autonomous AI agents with large language models. The book is positioned for software engineers, data scientists, system architects, technical managers, and learners who already have some grounding in Python or modern AI concepts. Its purpose is not only to explain what agentic AI means, but also to show how such systems can be designed, prompted, connected to tools, deployed, and governed. Organized into 45 modules across eight major chapters, it moves from foundations of autonomy to pre-built agents, custom agent construction, prompt engineering, safety, operations, use cases, and future directions. The book treats LLMs as components in broader systems that combine reasoning, planning, memory, retrieval, tool use, and feedback. Its emphasis is practical engineering rather than purely theoretical AI research.