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GenAI Developer

Job Description - GenAI Developer

Description

Key Responsibilities

  • Design, develop, and deploy enterprise Generative AI applications using Azure OpenAI Services. 
  • Build Retrieval-Augmented Generation (RAG) pipelines using embeddings and vector databases. 
  • Develop scalable REST APIs using FastAPI and Flask. 
  • Integrate Vision LLMs for image, document, and multimodal understanding. 
  • Build document processing pipelines using PyMuPDF for PDF extraction, parsing, and preprocessing. 
  • Implement semantic search using FAISS Vector Database. 
  • Engineer prompts and optimize LLM responses for enterprise use cases. 
  • Develop AI-powered chatbots, document Q&A, summarization, and intelligent automation solutions. 
  • Optimize AI models for latency, scalability, and cost efficiency. 
  • Integrate AI solutions with enterprise applications and cloud services. 
  • Implement monitoring, evaluation, and experimentation frameworks using Opik or similar LLM observability tools. 
  • Collaborate with product managers, architects, data scientists, and software engineers to deliver AI solutions. 
  • Ensure AI applications follow security, governance, and responsible AI best practices. 

Required Skills

Generative AI

  • Large Language Models (LLMs) 
  • Prompt Engineering 
  • Retrieval-Augmented Generation (RAG) 
  • Embeddings 
  • Semantic Search 
  • AI Agents 
  • Function Calling 
  • Context Management 
  • Model Evaluation 

Cloud & AI Platforms

  • Azure OpenAI Service 
  • Azure AI Services 
  • Azure Cognitive Search (preferred) 
  • Azure Storage 
  • Azure Functions (preferred) 

Programming

  • Python (Advanced) 
  • FastAPI 
  • Flask 
  • REST API Development 
  • Async Programming 

AI Frameworks & Libraries

  • LangChain 
  • LlamaIndex 
  • PyMuPDF 
  • FAISS Vector Database 
  • Vision LLMs 
  • OpenAI SDK 
  • Transformers (preferred) 

Development Tools

  • Visual Studio Code (VS Code) 
  • PyCharm 
  • Git 
  • GitHub/Azure DevOps 
  • Docker 

Observability & Evaluation

  • Opik 
  • Prompt evaluation 
  • LLM monitoring 
  • Experiment tracking 
  • Performance benchmarking 

Required Experience

  • 5–10 years of software development experience with strong Python expertise. 
  • Minimum 2–4 years of hands-on experience in Generative AI and LLM-based application development. 
  • Experience implementing enterprise RAG architectures. 
  • Strong experience with Azure OpenAI. 
  • Experience integrating Vision LLMs for document and image processing. 
  • Hands-on experience with vector databases such as FAISS. 
  • Experience building production-ready AI APIs using FastAPI or Flask. 
  • Experience processing large PDF/document repositories using PyMuPDF. 
  • Experience with AI evaluation and observability tools such as Opik.  
  • Experience deploying AI applications in cloud environments. 

Nice-to-Have Skills

  • LangGraph 
  • AutoGen/CrewAI 
  • Azure AI Search 
  • Cosmos DB 
  • PostgreSQL 
  • Redis 
  • Kubernetes 
  • MLflow 
  • Hugging Face 
  • OCR (Azure Document Intelligence, Tesseract) 
  • CI/CD pipelines 
  • MLOps

 



Responsibilities

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Qualifications

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