[100% Off] Ai Prompt Engineering &Amp; Chatgpt Llm Certification Course Pre
Master prompt engineering, RAG, AI agents & LLM apps. Prepare AI Certifications and High Paid Jobs
Description
Master AI Prompt Engineering & LLM Development: Complete Mastery – 6 Practice Tests
Transform Your Career with the Most In-Demand Tech Skill of 2026
Break into AI engineering with the most comprehensive practice test series on Udemy. Whether you’re starting from scratch or advancing your skills, these 6 specialized tests will take you from beginner to expert in AI prompt engineering, LLM development, and autonomous agent systems.
Complete your AI transformation with hands-on practice across 120+ real-world scenarios
Why This Course Stands Out
6 Progressive Practice Tests – Systematic path from fundamentals to expert-level
120+ Real-World Questions – Scenarios you’ll actually face in AI roles
Instant Detailed Feedback – Learn from every answer with comprehensive explanations
Updated for 2026 – Latest GPT-4, Claude, Gemini, and emerging AI technologies
Production-Focused – Skills that work in real business applications
Self-Paced Learning – Take tests in any order, review unlimited times
Complete 6-Test Learning System
Test 1: CORE PROMPTING (20 Questions)
Build Your Foundation
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Prompt structure and anatomy
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Zero-shot and few-shot techniques
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Instruction design principles
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Context management strategies
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Parameter tuning (temperature, top-p)
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System messages and roles
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Input/output formatting
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Prompt templates and patterns
Difficulty Level: Beginner | Estimated Time: 30 minutes
Test 2: ADVANCED TECHNIQUES (20 Questions)
Master Cutting-Edge Strategies
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Chain-of-thought (CoT) prompting
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Tree of thoughts methodology
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ReAct (Reasoning + Acting) frameworks
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Self-consistency approaches
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Meta-prompting and prompt chaining
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Multi-modal prompting (text, images, documents)
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Constitutional AI principles
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Prompt optimization and compression
Difficulty Level: Intermediate-Advanced | Estimated Time: 35 minutes
Test 3: PRODUCTION PATTERNS (20 Questions)
Build Scalable Enterprise Systems
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RAG (Retrieval-Augmented Generation) architectures
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Vector databases and embeddings (Pinecone, Chroma, Weaviate)
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Performance optimization and caching
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Error handling and fallback strategies
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API integration best practices
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Rate limiting and cost management
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Streaming and batch processing
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Monitoring, logging, and observability
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Testing and quality assurance
Difficulty Level: Advanced | Estimated Time: 40 minutes
Test 4: DOMAIN APPLICATIONS (20 Questions)
Apply AI Across Industries
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Customer service automation
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Content generation and marketing
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Code generation and debugging
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Data analysis and insights
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Document processing (legal, medical, financial)
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Educational content creation
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Research and summarization
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Translation and localization
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Industry-specific use cases
Difficulty Level: Intermediate | Estimated Time: 35 minutes
Test 5: EVALUATION & OPTIMIZATION (20 Questions)
Perfect Your AI Systems
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LLM evaluation metrics and frameworks
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Human vs automated testing
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Benchmark creation and analysis
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Prompt iteration methodologies
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Token and cost optimization
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Latency reduction techniques
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Model selection strategies
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A/B testing for prompts
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Fine-tuning vs prompt engineering
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Quality assurance workflows
Difficulty Level: Advanced | Estimated Time: 40 minutes
Test 6: AI AGENTS (20 Questions)
Build Autonomous Intelligent Systems
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Agent architectures and design patterns
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Tool use and function calling
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LangChain and LlamaIndex frameworks
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Multi-agent orchestration
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Memory systems (short-term and long-term)
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Planning and reasoning loops
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Security and sandboxing
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Workflow automation
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Human-in-the-loop patterns
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Advanced cognitive architectures
Complete Mastery (All 6 Tests)
Ideal for: Comprehensive expertise and serious career advancement
Learning Outcomes: Full spectrum from fundamentals to expert-level systems
Skills You’ll Develop
By completing this practice test series, you will be able to:
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Design effective prompts for any AI model or use case
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Build production-ready RAG systems with vector databases
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Create and deploy autonomous AI agent applications
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Optimize AI systems for cost, performance, and quality
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Evaluate and improve LLM outputs systematically
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Apply AI solutions across multiple business domains
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Debug and troubleshoot complex AI applications
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Implement security and safety best practices
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Make informed decisions about model selection and architecture
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Communicate confidently about AI in technical settings
Who This Course Is For
Software Developers transitioning into AI/ML roles
Data Scientists expanding into LLM applications
Product Managers working with AI products
Entrepreneurs building AI-powered businesses
Career Switchers entering the AI field
Technical Leads overseeing AI initiatives
Students preparing for AI careers
Consultants advising on AI implementation
Industry Context
Key Statistics:
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AI engineering roles growing 175% year-over-year (LinkedIn, 2025)
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87% of enterprises adopting LLM technology (Gartner, 2025)
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AI market projected to reach $15.7 trillion by 2030 (PwC)
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3.5 million AI job openings with severe talent shortage (World Economic Forum)
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Prompt engineering ranked #3 most in-demand skill (LinkedIn Skills Report 2026)
What You Get
Core Content
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6 comprehensive practice tests
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120+ carefully crafted questions
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Detailed explanations for every answer
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Real-world scenarios and case studies
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Code examples and implementation patterns
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Best practices documentation
Continuous Value
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Regular content updates
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Latest model capabilities (GPT-4, Claude, Gemini)
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New frameworks and tools
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Emerging techniques and patterns
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Lifetime access to all updates
Career Support
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Certificate of completion
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Interview preparation guidance
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Resume and portfolio tips
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Job search strategies
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Technical discussion frameworks
Author(s): Unknown




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