
Generative AI Engineering: Master Mock Interviews
About this course
The title "AI Engineer" has become the most sought-after role in the tech industry, but building enterprise-grade Generative AI applications is incredibly difficult. Prototyping a chatbot in a Jupyter notebook is easy; deploying it to millions of users without memory bottlenecks, prompt injections, or massive hallucinations requires a deep understanding of architecture. The Generative AI Engineering: Master Mock Interviews course is designed to test whether you have what it takes to build AI in production.
This comprehensive test bank throws you directly into the trenches of modern AI development. Across four distinct, randomized exam sets, you will face 200 scenario-based engineering challenges. First, you will tackle Information Retrieval (RAG), solving issues like the "Lost in the Middle" phenomenon and optimizing dense vector searches.
Next, you will test your Prompt Engineering skills, orchestrating autonomous LangChain agents and preventing adversarial jailbreaks. The exams get progressively harder as you move to the model layer. You will be tested on your ability to fine-tune 70B parameter open-source models using QLoRA on consumer hardware, and applying RLHF for safety alignment.
Finally, you will face the ultimate MLOps gauntlet. You will answer complex questions on optimizing the KV Cache with PagedAttention, streaming token responses via Server-Sent Events (SSE), and deploying quantized models to edge devices. By the end of these exams, you will be battle-tested and ready to architect the future of AI.
Skills you'll gain
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Course Information
Level: All Levels
Suitable for learners at this level
Duration: Self-paced
Total course content
Instructor: Udemy Instructor
Expert course creator
This course includes:
- 📹Video lectures
- đź“„Downloadable resources
- 📱Mobile & desktop access
- 🎓Certificate of completion
- ♾️Lifetime access
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