About: Simplilearn Simplilearn is the world’s #1 online Bootcamp provider, enabling learners around the globe with rigorous and highly specialized training offered in partnership with world-renowned universities and leading corporations. We focus on emerging technologies and skills, such as data science, cloud computing, programming, and more — that are transforming the global economy. Our training is hands-on and immersive, including live virtual classes, integrated labs and projects, 24x7 support, and a collaborative learning environment. Over two million professionals and 2000 corporate training organizations across 150 countries have harnessed our award-winning programs to achieve their career and business goals. Simplilearn has collaborated with Full stack Academy to leverage its widespread footprint in the US region and partnerships with Top US universities to grow internationally Position Overview The Part-Time Instructor for Artificial Intelligence and Machine Learning (AIML) plays a key role in delivering engaging and impactful learning experiences to adult learners enrolled in our online programs. Instructors facilitate curriculum content, support student learning, and connect technical concepts to real-world industry applications. This role involves teaching live online sessions, mentoring students, providing feedback, and contributing to a collaborative instructional environment. Classes are delivered 100% online in a synchronous format. Job Summary We are seeking experienced AGS- AI Trainers to deliver live online training sessions covering modern generative models, LLMs, LangChain, RAG, and prompt engineering with hands-on demos and projects. Key Responsibilities Deliver live, instructor-led online classes Conduct hands-on demos, guided practices, and projects Explain concepts using real-world use cases Address learner queries and ensure engagement Required Skills & Expertise Generative AI & Foundation Models Generative AI model types and applications VAEs and GANs (architecture, use cases, limitations) Transformer-based models and attention mechanisms Self-attention and multi-head attention Language Models & LLMs Language models fundamentals and applications Large Language Models (architecture, training, operations, types) Retrieval-Augmented Generation (RAG) RAG concepts, components, retrievers, and workflows Real-world applications of RAG LangChain LangChain architecture and core components Building applications using LangChain Prompt, memory, chains, and model integration Text generation pipelines with Hugging Face models Prompt Engineering Prompt fundamentals and optimization Zero-shot, few-shot, CoT, Self-Consistency, ToT prompting Prompt templates and LangChain prompts Prompt engineering applications (data & synthetic data generation) Qualifications 8+ years of experience in Agentic Ai / Generative AI / NLP / LLMs Bachelor’s degree in any field AND a minimum of 5+ years of professional experience in Artificial Intelligence or Machine Learning, Strong proficiency in Python, LLM frameworks, and LangChain Prior online or classroom training experience
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