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Immediate requirement for - AI Engineer.
Position: AI Engineer
Client Location: Pune
Experience: 5 to 10 Years
Compensation: Up to ₹28LPA
Notice Period: Immediate to 30 Days
Mandatory Skills
Job Title: AI Engineer - Agentic & GenAI Systems
Role Summary
Design, build, and operate production-grade agentic and GenAI systems from end to end. You will ship robust APIs, reusable components, and secure pipelines that connect Large Language Models (LLMs) with enterprise systems. This role requires pairing strong software engineering with modern AI practices—such as RAG, agent orchestration, and evaluation—to deliver scalable business outcomes.
Responsibilities
Agent & Application Engineering
Retrieval, Data & Knowledge
Quality, Testing & Evaluation
Security & Compliance
Tech Stack & Qualifications
Job ID: 148908093
Skills:
text classification , Summarization, Tensorflow, Pytorch, Docker, Python, AWS, Gcp, MLops, Azure, Kubernetes, embeddings, AI workflows, scikit-learn, Hugging Face, reinforcement learning, NLP tasks, workflow automation, semantic search, LangChain, recommendation systems, Transformers, OpenAI, LlamaIndex
Skills:
Nosql, RDBMS, Typescript, MLops, AWS, Python, Kubernetes, Docker, Api Development, GPU acceleration, AI infrastructure, Vector DB, distributed computing frameworks, AI model deployment
Skills:
traceability , Python, LangGraph, LangChain, automated regression testing, evaluation frameworks, observability
Skills:
AI ML, Memory Management, FastAPI, Mssql, Python, Azure, Apis, MongoDB, RAG pipelines, NLP engineering, vector databases, Azure Cognitive AI Search, multi-agent orchestration, LangChain, prompt engineering, cloud-hosted AI models
Skills:
clay , Tensorflow, AWS, Pytorch, Python, Azure, Gcp, LLMs, Exa, relay.app, Kubeflow, MLflow, scikit-learn, Byword, Hugging Face, vector databases, n8n, AI MLOps workflows, RAG architectures, prompt engineering, multimodal AI systems
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