AI ML Engineers

5 - 10 years

4 - 8 Lacs

Posted:1 day ago| Platform: Foundit logo

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Skills Required

Work Mode

On-site

Job Type

Full Time

Job Description

Key Responsibilities

  • Design, build, and deploy ML and GenAI solutions across multiple use cases (e.g., LLM-based search, document summarization, predictive modeling).
  • Develop and maintain ML pipelines using MLflow, Databricks, and AWS Sagemaker.
  • Implement APIs and microservices for AI model inference using FastAPI and containerization strategies.
  • Work with large structured and unstructured datasets (CSV, JSON, PDFs, EMRs, clinical reports).
  • Optimize data processing using PySpark, SQL, and RDS (AWS).
  • Integrate foundation models and LLMs (e.g., OpenAI, Cohere, Claude, AWS Bedrock) into production workflows.
  • Monitor, retrain, and maintain models in production, ensuring high availability, reliability, and performance.
  • Collaborate with cross-functional teams (Data Engineering, Cloud, Product) to ensure scalable deployments.
  • Document processes, model cards, data lineage, and performance reports for governance and compliance.

Required Skills Qualifications

  • 5+ years of hands-on experience in Machine Learning and AI engineering.
  • Strong Python programming skills with experience in FastAPI, PySpark, and SQL.
  • Hands-on experience with MLflow for experiment tracking, model versioning, and deployment.
  • Strong knowledge of Generative AI and LLMs: prompt engineering, fine-tuning, and model integration.
  • Experience working on Databricks (Delta Lake, ML runtime) and AWS Cloud services (S3, EC2, Lambda, RDS, Bedrock).
  • Familiarity with GitLab CI/CD, containerization (Docker), and cloud DevOps practices.
  • Deep understanding of machine learning workflows including data preprocessing, feature engineering, model selection, training, tuning, and deployment.

Preferred / Nice to Have

  • Experience in Life Sciences or Healthcare domains: clinical data, RWD/RWE, regulatory AI, etc.
  • Familiarity with data privacy regulations (HIPAA, GDPR) or GxP practices in AI workflows.
  • Experience working with vector databases (e.g., FAISS, Pinecone) and retrieval-augmented generation (RAG).
  • Knowledge of performance monitoring, model drift detection, and responsible AI practices.

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