03-08-2026, 09:37 PM
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52-Week AI Leadership Course: Agents, MCP, RAG
Published 6/2026
MP4 | Video: h264, 1920x1080 | Audio: AAC, 44.1 KHz, 2 Ch Language: English | Duration: 49h 4m | Size: 23.55 GB
Lead enterprise AI transformation with Agents, MCP, RAG, governance, strategy, and production AI systems.
What you'll learn
Understand the strategic role of AI leadership in driving enterprise transformation, innovation, and business value.
Identify high-impact AI opportunities and evaluate when to experiment, scale, buy, build, or partner.
Explain how LLMs, tokens, embeddings, context windows, and hallucinations work from an executive and business perspective.
Design and evaluate RAG systems using retrieval pipelines, vector databases, embeddings, hybrid search, chunking, and benchmarking.
Understand MCP architecture and how it connects AI systems to tools, APIs, enterprise data, workflows, and external systems.
Analyze how AI agents and multi-agent systems plan, reason, use tools, coordinate tasks, and execute autonomous workflows.
Apply AI governance, risk, compliance, observability, and human-in-the-loop controls to enterprise AI systems.
Lead AI initiatives from pilot to production by managing cost, performance, reliability, adoption, and organizational change.
Requirements
No advanced technical background is required; this course is designed for leaders, managers, consultants, product owners, architects, and professionals who want to understand AI strategically.
A basic awareness of artificial intelligence, ChatGPT, or generative AI tools will be helpful, but not required.
Learners should be comfortable thinking about business problems, workflows, teams, strategy, and organizational change.
No coding experience is required to benefit from the course, although technical learners will gain additional value from the architecture and system design sections.
A laptop or desktop computer with internet access is recommended for watching lessons, taking notes, and exploring optional AI tools.
Curiosity, an open mindset, and a willingness to learn how AI systems create real business value are the most important requirements.
Description
This course contains the use of artificial intelligence.
52-Week AI Leadership: Agents, MCP, RAG is a complete executive-level program designed for leaders, managers, architects, product owners, consultants, and technology professionals who want to understand, lead, and scale modernAI transformation inside organizations. This course goes beyond surface-level AI trends and gives you a structured, year-long roadmap for mastering the most important ideas shaping enterprise AI:AI strategy,LLMs,RAG,MCP,AI agents,multi-agent systems,governance,AI product management, andproduction AI architecture.
The course begins with theAI leadership mindset, helping you move from technical curiosity to strategic decision-making. You will learn how to identifyhigh-leverage AI opportunities, align AI initiatives with business outcomes, avoid "AI theater," and build an experimentation culture that leads to real enterprise value. You will also explore theenterprise AI landscape in 2026, including major platforms, open vs closed model ecosystems, infrastructure trends, and the strategic choices organizations must make when selecting vendors, tools, and deployment models.
Next, the course explains howlarge language models work from an executive perspective. You will understandtokens,embeddings,transformers,context windows, hallucinations, inference costs, and the tradeoffs that impact real-world AI systems. From there, you will dive intoRetrieval-Augmented Generation, orRAG, learning how enterprise knowledge systems retrieve, ground, and generate answers using company data. Topics includevector databases,embeddings,hybrid search,chunking,indexing,retrieval design,RAG evaluation, personalization, knowledge integration, and common failure modes.
A major part of the course focuses onModel Context Protocol, orMCP, and why it matters for the future of AI integration. You will learn howMCP servers, tools, APIs, plugins, authentication, observability, and multi-tool orchestration allow AI systems to connect with enterprise data, SaaS platforms, workflows, and legacy systems. This gives leaders a practical framework for understanding how AI systems move from chat interfaces to connected business execution layers.
The course then moves intoagentic AI, covering what makes an AI system truly agentic. You will studyplanning,reasoning architectures,ReAct,Reflexion, autonomous workflows, agent memory, tool use, guardrails, and agent evaluation. You will also exploremulti-agent systems, including agent roles, coordination strategies, communication protocols, conflict resolution, and scaling patterns.
Finally, the course focuses on production and leadership. You will learnAI system architecture design patterns, orchestration frameworks such asLangGraph, production scaling,human-in-the-loop design, monitoring, observability, reliability, failover, cost optimization, andAI governance, risk, and compliance. The final modules connect technology to leadership throughAI product management, organizational design, talent strategy, change management, AI literacy, and the future ofagentic enterprises.
By the end of this course, you will have a clear strategic understanding of how to lead AI initiatives from idea to implementation, from experiments to production, and from isolated tools to enterprise-wideAI-powered transformation.
Who this course is for
Executives, senior leaders, and managers who want to understand how AI can drive business transformation, operational efficiency, and competitive advantage.
Product managers, program managers, and business leaders responsible for planning, evaluating, or scaling AI-powered products and initiatives.
Technology leaders, architects, consultants, and solution designers who want a strategic understanding of LLMs, RAG, MCP, AI agents, and enterprise AI architecture.
Professionals involved in AI strategy, governance, risk, compliance, innovation, digital transformation, or enterprise modernization.
Founders, entrepreneurs, and startup builders who want to understand how to design, position, and scale AI-first products and platforms.
Non-technical professionals who want to confidently discuss AI systems, vendor choices, implementation tradeoffs, and business value with technical teams.
AI enthusiasts and career changers who want a structured, leadership-focused roadmap for understanding the future of agentic AI, RAG, MCP, and AI-powered organizations.
Teams and organizations looking to build AI literacy, improve decision-making, and move from AI experimentation to real production impact.
Homepage
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