How Companies Build AI Softwares
Courses
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About this Course


Most AI courses teach models, prompts, or small demos.

But real companies don’t ship demos — they ship production AI systems.

This course teaches you how real AI software is designed, built, and deployed in the real world - from idea to production-grade architecture.


You will learn how modern AI systems work internally, how agents call tools, how runtime executes code, how APIs expose agents, and how full production infrastructure like CI/CD, Docker, Kubernetes, scaling, and reliability come together.


This is not theory.

This is real engineering architecture used in industry.


What You Will Learn


By the end of this course, you will understand:

  1. How AI applications are structured end-to-end
  2. Difference between Chatbot, Agent, Workflow, Multi-Agent systems
  3. How LLM + Tools actually work internally
  4. How tool calling and runtime execution happens
  5. Memory, Knowledge tools, Action tools, Computation tools
  6. API layer for AI applications (FastAPI architecture)
  7. Deployment pipeline (GitHub → Docker → Containers → Kubernetes)
  8. Scaling, Load Balancing, Self-Healing, Reliability
  9. Production design principles for real AI software
  10. How companies move from prototype → production
  11. Real system architecture thinking (not just coding)


Who This Course Is For

  1. AI Engineers
  2. Software Engineers moving into AI
  3. GenAI Developers
  4. Architects / System Designers
  5. Anyone building real AI products (not just demos)

What Makes This Course Different

This course focuses on HOW AI SOFTWARE ACTUALLY WORKS IN PRODUCTION — something most courses never teach.

You will learn:

  1. Real architecture thinking
  2. Real deployment mindset
  3. Real engineering workflow
  4. Real agent system design


$10$50