Job Description

DM-JD: Data Science & AI Engineer


We are looking for a candidate with a strong foundation in Data Science: predictive and forecasting who has built few Generative AI systems, with at least one production-grade GenAI deployment under their belt. The ideal candidate has spent the couple of years building forecasting models, time-series pipelines, and statistical/ML systems, and has since shipped and operated a real GenAI System in production — not just a POC or hackathon build. You'll bring quantitative depth to areas like demand/price forecasting while owning GenAI architecture, observability, and agentic workflows.


Roles & Responsibilities


  • Design and develop scalable GenAI applications, copilots, and chatbot systems
  • Build and optimize Retrieval Augmented Generation (RAG) pipelines
  • Develop agentic workflows using LangGraph/LangChain
  • Apply forecasting and predictive modeling expertise to renewable energy use cases (e.g., generation forecasting, price/demand forecasting, asset performance prediction)
  • Design and build APIs and AI microservices using FastAPI or similar frameworks
  • Develop observability and monitoring pipelines using OpenTelemetry, LangSmith, Grafana, or similar tools
  • Optimize AI systems for latency, scalability, reliability, and cost
  • Collaborate with cross-functional teams to deploy production-grade AI and DS solutions


Technical Skills


Must Have:


  • At least 1-2 production-grade GenAI projects shipped and operated live — specifically a RAG-based chatbot, copilot, or assistant serving real users/traffic (not a prototype). Should be able to speak to real production concerns: latency, cost, scale, failure modes, monitoring, and iteration post-launch
  • Strong hands-on experience in predictive/forecasting data science — time-series modeling, regression, ensemble methods (e.g., LightGBM, XGBoost), or deep learning forecasting architectures
  • Solid grounding in statistical modeling, feature engineering, and model evaluation for forecasting problems
  • Hands-on experience with LangGraph, LangChain, or similar orchestration frameworks
  • Strong understanding of RAG architecture — embeddings, chunking strategies, retrieval tuning, and vector search
  • Strong Python programming skills
  • Experience building REST APIs using FastAPI
  • Hands-on experience with vector databases/search platforms such as Azure AI Search, Pinecone, Milvus, or FAISS
  • Experience with observability tools like OpenTelemetry, LangSmith, Langfuse, Grafana, or Azure Monitor
  • Familiarity with cloud platforms such as Azure, AWS, or GCP


Good to Have:


  • Prior experience in energy/utilities/manufacturing domains involving forecasting (demand, price, generation, or maintenance)
  • Experience with semantic caching, guardrails, or query rewriting in production RAG systems
  • Experience with multimodal AI systems
  • Exposure to Docker, Kubernetes, and CI/CD pipelines
  • Knowledge of AI safety, guardrails, and prompt engineering


Eligibility Criteria


  • Strong system design and problem-solving skills
  • Ability to bridge classical ML/forecasting rigor with modern GenAI system design
  • Excellent communication and collaboration abilities
  • Should be able to walk through architecture and post-launch learnings of a shipped RAG/chatbot system in an interview



Job Details

Role Level: Mid-Level Work Type: Full-Time
Country: India City: Gurugram ,Haryana
Company Website: http://renew.com Job Function: Data Science & AI
Company Industry/
Sector:
Motor Vehicle Manufacturing

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