Senior AI/ML Engineer (Delhi)

Senior AI/ML Engineer (Delhi)

15 Sep
|
timbletech
|
Delhi

15 Sep

timbletech

Delhi

Role Overview

- We are looking for a hands-on Senior AI/ML Engineer to design, develop, and productionize high-throughput AI/ML and Generative AI systems.

- You will own the full lifecycle from problem formulation and data pipelines to deep learning architectures, RAG systems, LLMOps, and model governance
- delivering sub-second latency and high reliability across our enterprise products.

Key Responsibilities

- Model Architecture &
- Deployment: Design, train, and deploy production-scale ML/Deep Learning and GenAI systems (computer vision, document intelligence, OCR, NLP, fraud risk classification, and LLM applications).

- GenAI &

- LLM Solutions: Develop robust LLM workflows including prompt engineering, fine-tuning, RAG pipelines, semantic search, vector indexing (Pinecone/Milvus/Chroma), and safety guardrails.

- Pipelines &

- Engineering: Build performant feature extraction and data pipelines; write modular, vectorized, production-grade Python (NumPy, Pandas) and advanced SQL.

- MLOps &

- Monitoring: Establish end-to-end MLOps/LLMOps standards
- model registries, CI/CD, experiment tracking, drift detection, A/B testing, latency optimization, and cost governance.

- Responsible AI &

- Security: Ensure model decisions comply with enterprise data security, privacy standards, and auditability required by the BFSI sector.

- Collaboration &

- Ownership: Translate complex business requirements into technical roadmaps, conduct rigorous code reviews,



and mentor junior engineers.

Required Qualifications &

- Skills

- Education: B.Tech / M.Tech in Computer Science, AI/ML, Mathematics, or a related field

- Tier-1 institutes (IIT, IIIT, NIT) strongly preferred.

- Experience: 2+ years of hands-on experience developing, deploying, and maintaining ML/Deep Learning or GenAI models in production environments.

- GenAI &
- NLP Stack: Hands-on experience with LLMs, embeddings, RAG architectures, and frameworks such as LangChain, LlamaIndex, or Hugging Face.

- Deep Learning Frameworks: Strong proficiency in PyTorch or TensorFlow, with deep knowledge of transformer architectures and up-to-date NLP/CV models.

- Software &

- Data Engineering: Expert-level Python skills (pytest, Git, OOP, asynchronous programming), solid SQL proficiency, and familiarity with data workflows.

- Deployment &

- Cloud: Practical exposure to cloud platforms (AWS/GCP), containerization (Docker), API frameworks (FastAPI/Flask), and basic orchestration (Kubernetes).

Preferred Qualifications

- Prior domain experience in Fintech, RegTech, Identity Verification (KYC/AML), Fraud Intelligence, or B2B SaaS.

- Experience optimizing models for low latency and inference cost (e.g., ONNX, TensorRT, model quantization).

- Familiarity with workflow orchestrators such as Airflow, Prefect, or Kubeflow

Location - Delhi, Gurugram, Noida, Kanpur, Lucknow, Bangalore.

📌 Senior AI/ML Engineer (Delhi)
🏢 timbletech
📍 Delhi

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