The Generative AI Workflow Bible - The Complete Beginner-to-Pro Guide to ChatGPT, Claude & Gemini, Better Prompts, Practical Workflows, Automation, Coding, Testing, and AI Agents #998179

di Elena Ashford

Embercrest Press LLC

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AI can generate the work. The real advantage is knowing how to turn it into a reliable system.

Generative AI tools such as ChatGPT, Claude, Gemini, Copilot, open-source language models, and other capable generative AI systems can write reports, generate code, review requirements, create test cases, summarize meetings, analyze documents, and automate repetitive work in seconds. But a good AI response is not the same as a completed, trustworthy result.

The Generative AI Workflow Bible shows you how to move beyond isolated prompts and build practical AI-assisted systems that help you plan projects, develop software, test applications, automate workflows, manage knowledge, connect tools, evaluate outputs, and complete real work reliably.

The methods in this book are designed to be platform-independent. Whether you work with ChatGPT, Claude, Gemini, Copilot, open-source language models, or another capable generative AI platform, you will learn transferable principles for prompt engineering, workflow design, automation, retrieval, testing, agents, evaluation, security, and reliable AI-assisted delivery.

Written for complete beginners as well as working professionals, this practical guide explains complex AI concepts in clear language before showing you how to apply them step by step.
Inside, you will learn how to:
  • Write reliable prompts using a repeatable prompt-engineering framework
  • Turn one-off prompts into reusable templates and structured workflows
  • Apply the same workflow principles across ChatGPT, Claude, Gemini, Copilot, open-source models, and other generative AI systems
  • Use generative AI for project planning, requirements, user stories, meetings, risks, and delivery
  • Design software architecture, APIs, data models, and security controls with AI assistance
  • Generate, review, debug, refactor, and document code without surrendering engineering judgment
  • Create unit, API, integration, regression, exploratory, and release-readiness testing workflows
  • Work effectively with large documents, codebases, context windows, and knowledge sources
  • Understand retrieval-augmented generation and build practical RAG workflows
  • Produce structured AI outputs that software can validate and use safely
  • Connect AI to databases, APIs, files, search systems, and other tools
  • Automate repetitive business and technical workflows without automating bad processes
  • Understand when an AI agent is actually useful and when a simpler workflow is better
  • Design bounded AI agents and multi-agent systems without unnecessary complexity
  • Evaluate AI quality using representative datasets, rubrics, deterministic checks, and human review
  • Reduce hallucinations through evidence, verification, and controlled abstention
  • Defend AI systems against prompt injection, data leakage, excessive permissions, and unsafe tool use
  • Build reliable systems with logging, tracing, metrics, timeouts, retries, fallbacks, and circuit breakers
  • Measure AI cost, latency, failures, and operational performance
  • Choose the right level of AI, from no AI at all to automated workflows, agents, and multi-agent systems
Throughout the book, you will follow ClearDesk, a realistic software project that grows from a simple business problem into a complete AI-assisted delivery blueprint. You will see how requirements become architecture, architecture becomes implementation, implementation becomes testing, and testing becomes evidence for release.

You will also build reusable workflow libraries for project management, software engineering, and software testing, giving you practical systems you can adapt to your own organization, profession, or preferred AI platform.

This is not a book about collecting clever prompts.

It is about knowing what should be handled by AI, what should remain deterministic, what must be verified, where humans should retain authority, and how all of those pieces fit together into a dependable system.

Whether you are a manager, developer, tester, business owner, project professional, technical leader, or complete beginner who wants to use ChatGPT, Claude, Gemini, Copilot, open-source language models, or other generative AI systems for more than casual chatbot conversations, this book gives you a practical path from your first structured prompt to reliable AI-assisted systems.

Stop collecting prompts. Start building systems that finish the work.
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Altre informazioni:

ISBN:
9791224715474
Formato:
ebook
Anno di pubblicazione:
2026
Dimensione:
517 KB
Protezione:
nessuna
Lingua:
Inglese
Autori:
Elena Ashford