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almabetter

Data Science and Gen AI Instructor

almabetter

India
Full-Time
Posted 11 days ago

Job Description & Responsibilities

Company Description

Since 2020, AlmaBetter has been a pioneer in online technical education, specializing in Data Science and Web Development. With a community of over 50,000 learners and 2000+ successful placements, we bridge the skill gap and empower the tech workforce for a better tomorrow. Gain access to industry professionals from top companies like LinkedIn, Google, Microsoft, Netflix, and Airbnb. With live classes, coding problems, mock interviews, real-world projects, and a pay-after-placement program, we offer a practical and immersive learning experience. Choose AlmaBetter as your trusted partner for tech education and excel in the fast-paced tech industry.

Role Overview

We are looking for a passionate GenAI Instructor who thrives at the intersection of cutting-edge Generative AI technologies and impactful education. As a GenAI Instructor, you will shape the future of AI education by delivering industry-aligned content, mentoring learners, and fostering the mindset to build real-world AI systems using LLMs, AI agents, RAG pipelines, LangChain, LangGraph, AutoGen, CrewAI, Stable Diffusion, and more.

Note: A strong background in Machine Learning (ML) and Deep Learning (DL) is non-negotiable. Familiarity with MLOps tools and workflows is considered a strong plus.

Key Responsibilities

  • Curriculum Ownership & Development
  • Lead the design and iteration of a world-class curriculum around:

> Applied Deep Learning

> Applied Machine Learning

> LLMs and Prompt Engineering

> LangChain and LangGraph

> AI Agents using CrewAI and AutoGen

> RAG pipelines using LlamaIndex

> Fine-tuning, RLHF, and MLOps

> Stable Diffusion models

> Multi-agent real-world AI projects

  • Continuously update content based on emerging industry trends.
  • Instructional Excellence
  • Deliver live, recorded, or blended sessions that simplify complex GenAI concepts.
  • Foster project-based learning environments with real-world AI use cases (e.g., hotel agent systems, ecommerce RAG agents).
  • Break down challenging tools like LangGraph, AutoGen, and Stable Diffusion for learners of all backgrounds.
  • Student Mentorship & Evaluation
  • Guide students in capstone projects covering agentic design, RAG, and GenAI deployments.
  • Provide timely and actionable feedback on assignments and presentations.
  • Mentor learners in building AI-first thinking and problem-solving skills.
  • Continuous Innovation
  • Integrate cutting-edge tools and APIs (Gemini, OpenRouter, HuggingFace, etc.) into the teaching stack.
  • Collaborate with internal teams to improve delivery, curriculum flow, and learning outcomes.
  • Industry Collaboration & Engagement
  • Engage in communities around open-source GenAI tooling and contribute thought leadership.
  • Stay active on platforms like GitHub, LinkedIn, Hugging Face, and LangChain community forums.

Core Topics You'll Be Expected to Teach

As a GenAI Instructor, you will be responsible for delivering comprehensive instruction and project-based learning across the following domains:

  • Applied Deep Learning
  • Neural networks, CNNs, RNNs using PyTorch
  • NLP and Computer Vision foundations for GenAI
  • Integrating DL models with LLM pipelines
  • Applied Machine Learning
  • Core supervised and unsupervised ML algorithms
  • Feature engineering, model evaluation, and pipeline design
  • ML system design for GenAI-backed applications
  • Programming & Data Foundations
  • Python and Python Libraries (e.g., NumPy, Pandas, Scikit-learn, Transformers)
  • Applied SQL for querying structured data in GenAI workflows
  • Applied Statistics for data-driven decision-making and model evaluation
  • Foundations of Generative AI
  • Introduction to Generative AI concepts and ecosystem
  • Ethical and responsible use of AI technologies
  • AI safety and alignment in the GenAI era
  • Large Language Models (LLMs) & Prompt Engineering
  • Understanding LLMs and transformer-based architectures
  • Crafting effective prompts for zero-shot and few-shot tasks
  • Hands-on projects using LangChain for LLM-based workflows
  • Building Agentic AI Applications
  • Developing applications using LangGraph, AutoGen, and CrewAI
  • Designing, orchestrating, and scaling AI agents and multi-agent systems
  • Implementing agent memory, tools, routing, and RAG workflows
  • Retrieval-Augmented Generation (RAG) Systems
  • RAG system architecture and design principles
  • Implementing vector search and indexing using LlamaIndex
  • Building production-ready GenAI applications with RAG pipelines
  • Fine-tuning and RLHF
  • Finetuning pre-trained LLMs for custom tasks
  • Training LLMs from scratch with small to medium datasets
  • Reinforcement Learning with Human Feedback (RLHF) fundamentals
  • MLOps for GenAI Applications
  • LLMOps: Building, monitoring, and deploying GenAI systems
  • AgentOps: Managing lifecycle of deployed AI agents
  • CI/CD pipelines, version control, evaluation, and scaling
  • Business & Strategic Applications of GenAI
  • Structuring AI solutions for real-world business use cases
  • Building GenAI strategies for domains like eCommerce, hospitality, and productivity
  • GenAI for leaders: frameworks, risks, and competitive positioning

Qualifications

  • Minimum 2 years of experience in GenAI, AI/ML engineering, or Data Science Instructional roles.
  • Proven expertise in:
  • LLMs, LangChain, LangGraph, AutoGen, CrewAI
  • RAG systems (LlamaIndex, vector databases)
  • Stable Diffusion, Reinforcement Learning, RLHF
  • Python, PyTorch, APIs, Prompt Engineering
  • Strong foundation in Machine Learning and Deep Learning is mandatory.
  • Familiarity with MLOps workflows (e.g., CI/CD, monitoring, deployment) is a strong advantage.
  • Hands-on experience building or mentoring real-world GenAI applications.
  • Excellent verbal and written communication skills.
  • Demonstrated ability to break down complex technical systems into teachable components.

Preferred Skills

  • Prior teaching/training experience in AI/ML/GenAI.
  • Active contributor to open-source GenAI tools or frameworks.
  • Experience with platform deployment, LLMOps, and agent orchestration.
  • Familiarity with product-led education or startup ecosystems.

Required Skills

PythonSQLCI/CDMachine LearningDeep LearningNLPPyTorchExcelCommunicationLeadership

Job Details

Employment TypeFull-Time
Work ModeOn-Site
Experience27 years
Positions1

Posted by

N/A

Posted on:

18 Aug 2026

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