- Promoted by: Anonymous
- Platform: Udemy
- Category: Data Science
- Language: English
- Instructor: Data Science Academy , School of AI
- Duration: 5 hour(s) 53 minute(s)
- Student(s): 416
- Rate 0 Of 5 From 0 Votes
- Expires on: 2026/02/24
-
Price:
219.990
Learn data analysis, AI fundamentals, and practical decision-making using real-world datasets
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for the "Master Claude Code: Build AI Operating Systems & Workflows" course by Data Science Academy , School of AI on Udemy.
This course, boasting a 0.0-star rating from 0 reviews
and with 416 enrolled students, provides comprehensive training in Data Science.
Spanning approximately
5 hour(s)
53 minute(s)
, this course is delivered in English
and we updated the information on February 20, 2026.
To get your free access, find the coupon code at the end of this article. Happy learning!
“This course contains the use of artificial intelligence”
Master Claude Code: Build AI Operating Systems & Workflows is a comprehensive blueprint for designing, building, and scaling structured AI Operating Systems using Claude Code. This course goes far beyond basic prompting and teaches you how to architect production-ready AI systems that power real workflows, automation pipelines, and multi-agent collaboration environments. Instead of treating AI as a simple assistant, you will learn how to transform it into structured, governed, and scalable operational infrastructure.
Throughout the course, you will move from casual AI usage to building a fully integrated AI workflow stack that combines structured prompting, example-based prompting, role-based prompting, and checkpoint-driven iteration patterns. You will learn how to design automation architectures that operate predictably and securely, ensuring clarity, repeatability, and governance in every system you build. Rather than generating isolated outputs, you will engineer connected workflows that execute across tools, teams, and objectives.
You will design your own Personal AI Operating System, implement structured automation architectures, and map MCP integrations to connect external tools safely and intelligently. The course covers building reusable Claude Code libraries, defining team-wide standards, and creating multi-layered workflows that scale. You will develop multi-agent orchestration systems, implement enterprise-grade security and permission frameworks, and apply structured governance models to prevent runaway automation and maintain operational stability.
Real-world workflows are central to this program. You will build an AI Product Manager pipeline that transforms meeting transcripts into PRDs, Jira tickets, and dashboards. You will construct an AI Research Analyst system that moves from data ingestion to insight extraction and executive summaries. You will design AI DevOps automation workflows, implement an AI Knowledge OS, and create personal systems for finance automation, learning system automation, and business content automation.
Beyond technical execution, you will learn how to measure performance using structured productivity metrics, calculate automation ROI, and implement controlled delegation through subagent orchestration and structured task management systems. You will master change control discipline, structured risk mitigation strategies, and scalable AI team architectures.
By the end of this course, you will be capable of building enterprise-ready Claude Code systems, architecting scalable multi-agent AI teams, designing secure and governed AI infrastructures, and transforming AI from a reactive assistant into strategic operational intelligence. This is not a prompting course — it is a systems architecture course for the future of intelligent automation.