Lucebra
Lucebra 企业版
信息技术与软件/其他 IT 和软件/AI 代理和代理 AI

Advanced Claude Code & AI Agents: Build Apps, Automations and Developer Workflows (课程)

Master Claude Code for repo-level development, safe terminal workflows, AI agents, automation, testing, Git, project instructions, and professional developer workflows.

所有级别5 讲座终身无限畅学
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Advanced Claude Code & AI Agents: Build Apps, Automations and Developer Workflows
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美国英语
99 种语言字幕
4小时 16分
总内容
你将学到什么
Understand the professional role of Claude Code in developer workflows
Understand the difference between chatbot assistance and agentic coding
Prepare a safe Claude Code development workspace
课程内容5 部分5 讲座04:16:35 总长度

Course Welcome and Expert Roadmap

43:19

This section teaches learners how to set up Claude Code professionally, work safely with terminals and Git, analyze repositories, create strong project instructions, use expert coding-agent prompt patterns, and prepare a reusable AI coding workspace.

Planning an App Before Coding

54:42

This section teaches learners how to plan apps, structure projects, build frontend and backend features, work with databases, debug and refactor code, generate tests and documentation, and complete a professional mini app with Claude Code.

Developer Automation Mindset

49:10

This section teaches learners how to build safe developer automations, terminal workflows, reusable commands, Git and GitHub systems, release documentation, log analysis, and external tool integrations with Claude Code.

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要求

Basic understanding of computers and software development

Basic programming or technical knowledge

A small practice repository

目标受众

Software-development professionals

Technical content creators

Anyone seeking advanced AI-powered developer workflows

关于本课程

ADVANCED CLAUDE CODE & AI AGENTS: BUILD APPS, AUTOMATIONS AND DEVELOPER WORKFLOWS Build Apps, Automations, AI Agents, Developer Workflows, and Freelance Services with Claude Code INTRODUCTION The Advanced Claude Code & AI Agents course is designed for developers, programmers, technical learners, automation builders, freelancers, agency owners, and creators who want to move beyond casual AI use and build professional AI-powered development workflows. This course introduces Claude Code as an agentic coding tool for real developer environments. Instead of using AI only to generate isolated code snippets, learners explore how Claude Code can support repo-level development, codebase analysis, feature planning, debugging, refactoring, testing, documentation, automation, and structured delivery. The course begins with expert setup, mindset, and workspace preparation. Learners work with a terminal, code editor, Git, GitHub, a safe practice repository, and project-level instructions. They learn why professional AI coding requires control, planning, review, and verification rather than blindly accepting AI-generated changes. A major focus is agentic coding. Students learn a practical workflow: Define the task → Inspect the project → Plan the change → Make controlled edits → Test the result → Review the final output This human-in-the-loop approach keeps the learner responsible for direction, quality, security, and correctness. The course also introduces project instruction files such as CLAUDE.md, where project context, coding standards, testing requirements, security rules, documentation expectations, and “do not change” boundaries can be defined. Learners discover how reusable instructions improve consistency and reduce unnecessary errors. Safe terminal use is another important part of the course. Students learn to review commands before running them, understand which files or systems may be affected, use Git as a safety net, create branches, commit before major changes, review diffs, and avoid unprotected work on production projects. Repo-level analysis is taught as a professional first step before editing. Learners practise asking Claude Code to explain project purpose, folder structure, key files, architecture, data flow, APIs, components, configuration, risks, and recommended next steps without immediately changing files. Students also learn how to turn broad ideas into clear developer tasks using goals, user stories, acceptance criteria, constraints, testing requirements, and output expectations. Expert prompt patterns such as plan-first, diff-first, test-first, explain-before-edit, and final-review prompts are introduced to improve safety and quality. The first section concludes with a practical workspace project in which learners prepare a practice repository, create a safe Git branch, write project instructions, perform repo analysis, save a safety checklist, and select a feature for later development. The wider course roadmap also introduces app and feature development, developer automation and GitHub workflows, AI agents, subagents, MCP and SDK workflows, and ways to package these skills into freelance, business, and content-creation services. BENEFITS
  1. Build a Professional Claude Code Foundation
Learn how Claude Code fits into real developer workflows instead of treating it as a simple chatbot.
  1. Work at Repository Level
Understand how to analyze project structure, key files, dependencies, architecture, APIs, components, and configuration before making changes.
  1. Learn Agentic Coding
Use a structured process of understanding, planning, editing, testing, and reviewing rather than relying on one-shot code generation.
  1. Improve Development Safety
Use branches, commits, diffs, test repositories, command reviews, and approval checkpoints to reduce risky changes.
  1. Create Reusable Project Instructions
Learn how project-level guidance can communicate coding rules, testing expectations, security limits, documentation standards, and project boundaries.
  1. Write Stronger Instructions for Coding Agents
Replace vague requests with clear scope, goals, limitations, approval requirements, and expected output formats.
  1. Use Expert Prompt Patterns
Apply plan-first, diff-first, test-first, explain-before-edit, and review prompts to keep AI-assisted coding controlled and professional.
  1. Turn Ideas into Developer-Ready Tasks
Convert broad ideas into user stories, acceptance criteria, constraints, files to inspect, testing requirements, and clear deliverables.
  1. Improve Repo Onboarding and Analysis
Use Claude Code to understand unfamiliar projects, identify risks, locate important files, and create improvement roadmaps.
  1. Strengthen Debugging and Review Habits
Ask for root-cause explanations, possible fixes, security checks, edge cases, and missing tests before finalizing changes.
  1. Reduce Context Switching
Learn terminal-first workflows that connect AI support more naturally with files, Git, scripts, editors, and developer tools.
  1. Prepare for AI Agent Workflows
Build the foundation needed for later work with agents, subagents, automation systems, MCP, and SDK-based workflows.
  1. Build Practical Project Experience
Complete a real section project by preparing a reusable AI coding workspace rather than only studying theory.
  1. Support Freelance and Business Opportunities
Develop skills that can later be packaged into AI-assisted development, automation, repo analysis, documentation, and workflow services. WHY CHOOSE THIS COURSE? This course is designed for learners who want a more serious and structured approach to AI-assisted software development. It goes beyond asking an AI tool to simply “write code.” Instead, it teaches how to supervise AI inside a professional workflow. You learn to inspect before editing, plan before changing code, define boundaries, review commands, test changes, and verify final results. These habits are especially important when working with repositories, client projects, business systems, or any environment where an incorrect command or uncontrolled edit could create problems. The course also emphasizes human-in-the-loop control. Claude Code can assist with analysis, planning, coding, testing, documentation, and automation, but the developer remains responsible for approving the direction and verifying the result. Another reason to choose this course is its focus on reusable systems. Project instructions, task templates, safety checklists, analysis prompts, and expert coding-agent patterns can be saved and reused across projects. The course is practical. Learners are encouraged to keep a terminal open, prepare a test repository, practise every workflow, save useful instructions and prompts, and build the final project step by step. The course roadmap also connects technical skills with real delivery. Later sections move into app development, automation, AI agents, developer workflows, and freelance or business applications. WHO THIS COURSE IS FOR Developers and Programmers Professionals who want to integrate Claude Code into real coding workflows. Technical Learners and Students Learners who already understand basic technology and want to progress into AI-powered software-development workflows. Automation Builders People who want to create more structured developer automations and agent-based workflows. Freelancers Freelancers who want to use AI to support repo analysis, coding, testing, documentation, automation, and client delivery. Agency Owners Technical service providers who want to understand how AI coding workflows can improve development and delivery. Git and GitHub Users Developers who want safer AI-assisted repository workflows using branches, commits, diffs, and testing. AI Agent Learners People interested in agents, subagents, MCP, SDK workflows, and advanced developer automation. Technical Content Creators Creators working with coding, AI-development, and automation workflows. Advanced AI Users Anyone who wants to move beyond simple AI code generation and learn a controlled, professional, human-reviewed Claude Code workflow. BUY NOW / ENROLL NOW Take the next step from ordinary AI assistance to professional AI-powered development workflows. In this course, you will learn how to prepare a safe Claude Code workspace, work with a terminal and repository, analyze codebases, define project instructions, create developer-ready tasks, apply expert prompt patterns, review commands, use Git as a safety net, and keep human approval at the center of every important change. You will practise with real workflows rather than only watching demonstrations. By completing the section project, you will create a reusable AI coding setup with a practice repository, Git branch, project instructions, repo analysis, safety checklist, and next feature idea. The course also prepares you for later topics including app development, developer automation, GitHub workflows, AI agents, subagents, MCP, SDK workflows, and freelance or business applications. If you already understand basic technology and want to use Claude Code as a serious development partner rather than a casual chatbot, this course provides a structured path forward. Enroll now and start building safer, smarter, more professional AI coding workflows with Claude Code.
职业发展机遇与目标岗位

掌握前沿实战技能,胜任全球高薪核心职位

就业就绪型课程
可申请的目标岗位

Full Stack Software Engineer

Backend Systems Developer

Frontend Application Specialist

Automation & Scripting Engineer

预估年薪范围
$90,000 – $145,000 / yr
全球行业需求

High Global Tech Demand

掌握的核心关键技能
Production Code Architecture
RESTful & Modern API Design
State Management & UI Scaling
Debugging & Automated Testing
* 估算数据基于全球科技行业薪酬基准与招聘市场报告。
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