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Claude Code for Vibe Coding

Курс от Edureka
Средний≈ 8.4 чАнглийский
О курсеНавыкиПрограммаПреподаватели

О курсе

This program equips developers, engineers, and technical professionals with the practical skills needed to design, manage, and deploy AI-driven software development workflows using terminal-based autonomous agents. Designed for modern AI-first engineering environments, the course emphasizes hands-on learning with Claude Code, structured instruction design, and Model Context Protocol (MCP) to help learners build scalable, production-ready systems efficiently and reliably. You will begin by exploring the foundations of terminal-based AI agents and autonomous coding workflows, gaining clarity on how these systems interpret instructions, execute commands, and interact with development environments. This includes understanding the differences between IDE assistants and terminal agents, how instruction quality impacts execution outcomes, and how developers can shift from manual coding to orchestrating AI-driven tasks. You will also gain hands-on experience setting up Claude Code and running your first commands to establish a strong operational baseline. Building on this foundation, the course introduces advanced task delegation and autonomous feature development. You will learn how to structure clear, multi-step instructions that enable AI agents to build complete features, enhance applications, and handle complex workflows. The curriculum then expands into Model Context Protocol (MCP), where you will explore how AI systems integrate with external tools, APIs, and data sources. Through practical exercises, you will design and implement custom MCP servers, enabling AI agents to interact with real-world systems and extend beyond isolated code generation. Next, the program focuses on integrating autonomous agents into professional development and DevOps workflows. You will gain hands-on experience using Claude Code for automated testing, debugging, and validation, while learning how to incorporate AI into CI/CD pipelines and collaborative engineering processes. The course demonstrates how to maintain control, visibility, and reliability when working with autonomous systems in production environments. The curriculum then emphasizes quality assurance, security, and best practices for AI-assisted development. You will learn how to validate AI-generated outputs, perform structured code reviews, apply security scanning techniques, and ensure that AI-driven workflows meet professional engineering standards. The course reinforces the importance of balancing automation with oversight to achieve both speed and reliability in production systems. Finally, the course culminates in a comprehensive capstone experience where you design, build, and deploy a production-ready application using terminal-based AI agents. You will apply autonomous task delegation, MCP integration, testing strategies, and deployment workflows in an end-to-end project that reflects real-world AI-first software engineering practices. By the end of this course, you will be able to: Use terminal-based AI agents to execute and automate software development tasks Design structured instructions for reliable autonomous feature development Integrate external tools, APIs, and data sources using Model Context Protocol (MCP) Build and deploy custom MCP servers to extend AI capabilities Apply automated testing, debugging, and validation to AI-generated code Integrate AI agents into CI/CD and DevOps workflows Ensure security, reliability, and governance in AI-assisted development systems Design and implement end-to-end AI-driven production applications This course is designed for: Software developers transitioning to AI-driven and autonomous workflows DevOps engineers looking to automate development and deployment pipelines Engineering leads adopting AI-first development practices Computer science students preparing for next-generation development environments Technical professionals exploring AI agent frameworks and integrations Developers seeking to move beyond IDE assistants into autonomous execution systems Join us to master terminal-based AI agents, autonomous development workflows, and MCP integration, and gain the skills required to build reliable, scalable, and production-ready systems in the era of AI-driven software engineering.

Навыки, которые вы освоите

Claude CodeAI WorkflowsAI SecurityModel Context ProtocolAgentic WorkflowsSoftware EngineeringAI EnablementLLM ApplicationVibe codingPrompt EngineeringPrompt PatternsCode ReviewWeb ApplicationsSoftware TestingAnthropic ClaudeWeb DevelopmentAI OrchestrationGenerative AI AgentsSoftware DevelopmentSecurity Testing

Программа курса

4 модулей · 59 учебных материалов

01Introduction to Terminal-Based AI Agents16 материалов

Understanding Autonomous AI Coding

Specialization IntroductionВидеоCourse IntroductionВидеоCourse OverviewЧтениеTerminal Agents vs IDE Assistants : The Next EvolutionВидео

Учитесь у экспертов

Edureka

Преподаватель курса

Claude Code for Vibe Coding
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Обучение на Coursera

≈ 8.4 ч

4 модулей

Язык: Английский

Субтитры: Арабский, Французский, Итальянский, Бразильский португальский, Корейский, Немецкий, Испанский, Японский

Часть программы вашего университета
Hands-On: Installing and Configuring Claude Code on terminalВидео
Hands-On: Running Your First Claude Code CommandВидео
The Shift from Manual Coding to Autonomous DevelopmentЧтение
Practice Assignment: Understanding Autonomous AI CodingЗадание

Basic Claude Code Operations

Claude Code Commands and WorkflowsВидеоHands-On: Installing and understanding Claude Code DesktopВидеоHands-On: Delegating Simple Coding Tasks to Claude CodeВидеоDesigning Effective Human-AI Collaboration WorkflowsЧтениеPractice Assignment: Basic Claude Code OperationsЗадание

Module Wrap-Up and Assessment

Module Summary: Foundations of Terminal-Based AI AgentsЧтениеGraded Assignment:Introduction to Terminal-Based AI AgentsЗаданиеUsing Claude Code for Everyday Development TasksDIALOGUE
02Advanced Claude Code and MCP Integration18 материалов

Autonomous Feature Development

Delegating Complex Tasks : Writing Effective InstructionsВидеоHands-On: Building Complete Features with Claude CodeВидеоHands-On: Application Enhancment with claude codeВидеоBreaking Down Complex Features for AI ExecutionЧтениеPractice Assignment: Autonomous Feature DevelopmentЗадание

Introduction to Model Context Protocol (MCP)

MCP-Driven AI IntegrationВидеоHands-On: Setting Up Your First MCP ServerВидеоHands-On: Connecting Claude Code to External Tools and APIsВидеоContext's Role Behind AI SystemsЧтениеPractice Assignment: Introduction to Model Context Protocol (MCP)Задание

Building Custom MCP Servers

Hands-On: Developing a Custom MCP ServerВидеоHands-On: Custom MCP Integration with toolsВидеоHands-On: Integrating Database and API Access via MCPВидеоDesigning Tooling Layers for AIЧтениеPractice Assignment : Building Custom MCP ServersЗадание

Module Wrap-Up and Assessment

Module Summary : Advanced Claude Code and MCP IntegrationЧтениеGraded Assignment: Advanced Claude Code and MCP IntegrationЗаданиеBuilding AI Workflows with MCPDIALOGUE
03Testing and Quality Assurance19 материалов

Production Deployment and Best Practices

AI-Generated Code Testing and Validation StrategiesВидеоHands-On: Automated Testing with Claude CodeВидеоHands-On: Automated Test Fixing and Validating CodeВидеоTrust, Verification, and Risk in AI-Generated SystemsЧтениеPractice Assignment: Testing and Quality AssuranceЗадание

Security and Production Best Practices

Security Considerations for AI-Assisted DevelopmentВидеоHands-On: Code Review and Security ScanningВидеоHands-On: CI/CD Integration with Claude CodeВидеоSecurity Risks Unique to AI-Assisted DevelopmentЧтениеPractice Assignment: Security and Production Best PracticesЗадание

Capstone Project : Production Application

Hands-on: DevOps Dashboard SetupВидеоHands-On: Building the Monitoring SystemВидеоHands-On: Production Pipeline and DeploymentВидеоHands-On: AI Analysis with Claude CodeВидеоPrototype to Production: Thinking Like an AI System DesignerЧтениеPractice Assignment : Capstone Project : Production ApplicationЗадание

Module Wrap-Up and Assessment

Module Summary : Production Deployment and Best PracticesЧтениеGraded Assignment: Production Deployment and Best PracticesЗаданиеDeploying AI-Assisted Development SystemsDIALOGUE
04Course Wrap-Up6 материалов

Course Wrap-up and Assessments

Practice Project: Building an Autonomous AI Development System with Claude Code and MCPЧтениеKnowledge Check: Claude Code for Vibe CodingЗаданиеDesigning an AI-Powered Autonomous Development WorkflowЗаданиеInterview: Claude Code System DesignDIALOGUECourse SummaryВидеоDescribe Your Learning JourneyОбсуждение