Generative AI and Deep Learning Specialization 2026
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Home > Computer Science Books > Artificial intelligence > Neural networks and fuzzy systems > Generative AI and Deep Learning Specialization 2026: Comprehensive Guide with Neural Networks, Transformers, LLMs, Diffusion Models, and Real-World Projects(Tech Cert Academy Certification Prep)
Generative AI and Deep Learning Specialization 2026: Comprehensive Guide with Neural Networks, Transformers, LLMs, Diffusion Models, and Real-World Projects(Tech Cert Academy Certification Prep)

Generative AI and Deep Learning Specialization 2026: Comprehensive Guide with Neural Networks, Transformers, LLMs, Diffusion Models, and Real-World Projects(Tech Cert Academy Certification Prep)


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About the Book

Master Generative AI and Deep Learning - From Neural Network Fundamentals to Real-World AI Applications
Generative AI is transforming every industry - and this comprehensive specialization guide gives you the technical foundation, practical skills, and real-world project experience needed to work professionally with AI systems in 2026. Whether you're a developer, data scientist, or career-changer looking to enter the AI field, this book takes you from neural network fundamentals through building, training, and deploying cutting-edge generative models - with five hands-on projects along the way.
What You'll Learn:
- How neural networks and deep learning actually work - inside the architecture
- The transformer revolution: self-attention, multi-head attention, and scaling laws - Large Language Models: training pipelines, instruction tuning, RLHF, and evaluation - Image generation: GANs, VAEs, diffusion models, and Stable Diffusion - Multi-modal AI: text-to-image, text-to-video, audio generation, and vision-language models - Training and scaling strategies: distributed computing, cost optimization, parallelism - Evaluation and safety: benchmarks, bias detection, watermarking, responsible deployment - Production deployment: API serving, quantization, monitoring, and security - Five complete hands-on projects with code, architecture, and deployment guides
Who This Book Is For:
- Developers transitioning into AI/ML roles - Data scientists expanding into generative AI - Students preparing for AI certification exams - Engineers building AI-powered products - Anyone who wants to deeply understand how generative AI works under the hood This isn't a surface-level overview. You'll understand attention mechanisms, training dynamics, scaling laws, and production deployment - the knowledge that separates AI practitioners from AI prompters.
Includes:
- 100 practice exam questions with detailed explanations
- Five hands-on projects with complete implementation guides
- Comparison tables for major LLMs, frameworks, and datasets
- Troubleshooting guides for training and deployment issues Updated for 2026 with coverage of GPT-5, Claude, Gemini 2.0, open-source models, and the latest diffusion architectures.


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Product Details
  • ISBN-13: 9798189676239
  • Publisher: Independently Published
  • Publisher Imprint: Independently Published
  • Height: 229 mm
  • No of Pages: 98
  • Returnable: N
  • Spine Width: 5 mm
  • Weight: 195 gr
  • ISBN-10: 8189676237
  • Publisher Date: 29 Jul 2026
  • Binding: Paperback
  • Language: English
  • Returnable: N
  • Series Title: Tech Cert Academy Certification Prep
  • Sub Title: Comprehensive Guide with Neural Networks, Transformers, LLMs, Diffusion Models, and Real-World Projects
  • Width: 152 mm


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Generative AI and Deep Learning Specialization 2026: Comprehensive Guide with Neural Networks, Transformers, LLMs, Diffusion Models, and Real-World Projects(Tech Cert Academy Certification Prep)
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Generative AI and Deep Learning Specialization 2026: Comprehensive Guide with Neural Networks, Transformers, LLMs, Diffusion Models, and Real-World Projects(Tech Cert Academy Certification Prep)
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Generative AI and Deep Learning Specialization 2026: Comprehensive Guide with Neural Networks, Transformers, LLMs, Diffusion Models, and Real-World Projects(Tech Cert Academy Certification Prep)

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