Generative AI, LLMs & Prompt Engineering Mastery Tests
About this course
Generative AI has fundamentally reshaped the tech landscape, moving from a niche research field to the core of modern software engineering. It is no longer enough to just know how to write a basic prompt into a web interface; today's tech industry requires developers and data professionals who can architect, deploy, and scale robust AI applications using Large Language Models (LLMs). This course provides you with 200 meticulously designed, expert-level practice questions to test your readiness for this new era of technology.Across these four highly challenging assessment sets, you will be placed in realistic engineering scenarios. You will test your ability to build sophisticated Retrieval-Augmented Generation (RAG) pipelines, integrating frameworks like LangChain and LlamaIndex with Vector Databases to create enterprise-grade knowledge assistants. The questions will push you to evaluate complex trade-offs: When should you use Few-Shot Prompting versus full model Fine-Tuning? How do you adjust temperature parameters to prevent hallucinations in a medical legal summarization tool? How do you protect a customer-facing chatbot from malicious prompt injections?Every single question in this course is unique and comes with a detailed, in-depth explanation. Regardless of whether you select the correct answer on your first try, reviewing the explanations will teach you the industry-standard architectural best practices for utilizing the OpenAI API, Hugging Face Transformers, and autonomous AI agents. If you are preparing for a technical interview in AI engineering, or simply want to certify that your skills meet current generation requirements, this is your ultimate testing ground. Enroll today and master the architecture of Generative AI!Course locale: English (US)Course instructional level: Expert LevelCourse category: IT & SoftwareCourse subcategory: Data Sc
69/100
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- 8/35
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What you'll learn
- build Retrieval-Augmented Generation (RAG) pipelines
- integrate frameworks like LangChain and LlamaIndex
- apply industry-standard architectural best practices
- evaluate Few-Shot Prompting versus full model Fine-Tuning
- adjust temperature parameters in AI models
- protect AI applications from malicious prompt injections
Course objectives
- prepare for technical interviews in AI engineering
- certify current skills in generative AI and LLMs
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