Posted on: 14/08/2026
GenAI / AI-ML Engineer
Location : Gurugram (Hybrid)
Employment Type : Full-Time
Experience : 4 to 6 Years
Preference : Noida/NCR Local Candidates Only
Key Responsibilities :
- Design, develop, and deploy scalable AI/ML and Generative AI solutions.
- Build and optimize RAG (Retrieval-Augmented Generation) pipelines using modern frameworks and vector databases.
- Develop LLM-powered applications leveraging prompt engineering, AI agents, and multi-agent workflows.
- Fine-tune, evaluate, and monitor machine learning and deep learning models.
- Build REST APIs and backend services for AI applications.
- Design data preprocessing, feature engineering, and model evaluation pipelines.
- Integrate structured and unstructured data sources to deliver contextual AI solutions.
- Collaborate with cross-functional teams including Data Engineering, DevOps, and Product teams.
- Ensure scalability, reliability, and performance of AI applications in production environments.
Programming & Development :
- Strong hands-on experience in Python and SQL.
- Experience building APIs using FastAPI or similar frameworks.
- Strong understanding of software engineering best practices and Agile methodologies.
Machine Learning & Deep Learning :
- Hands-on experience with: Scikit-learn, TensorFlow, PyTorch, Keras.
- Strong understanding of: Regression, Classification, Clustering, Feature Engineering, Model Evaluation, Hyperparameter Tuning.
NLP & Generative AI :
- Minimum 1+ year of hands-on experience in GenAI/LLM projects.
- Experience with: Large Language Models (LLMs), Prompt Engineering, RAG Architectures, Agentic AI / Multi-Agent Systems, LangChain, LangGraph, OpenAI APIs, Hugging Face, LangSmith.
RAG & Vector Databases :
- Experience working with: Pinecone, FAISS.
- Knowledge of embedding models and semantic search architectures.
- Experience with RAG evaluation metrics such as RAGAS, BLEU, and ROUGE.
Cloud & DevOps :
- Hands-on experience with AWS services: EC2, S3, SageMaker, Bedrock.
- Experience with Docker, Git, JIRA, and CI/CD practices.
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