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Data Science - Administrator

Data Science - Administrator

Marsh
Early Applicant
  • Posted a day ago
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Job Description

Location- Gurugram

Experience- 2-3 years

  • Strong software engineering fundamentals in Python — including writing clean, modular, testable code and designing maintainable codebases/architectures, not just scripting models
  • Proven experience building and deploying ML/GenAI solutions end-to-end — from model/prompt design through to production deployment, using frameworks such as scikit-learn, TensorFlow, or PyTorch
  • Deep knowledge of LLMs and generative AI, including prompt engineering, retrieval-augmented generation (RAG), embeddings, and vector databases
  • Experience designing and building AI agents and automation workflows (not just calling APIs — architecting multi-step, tool-using systems)
  • Backend and API development experience, with the ability to integrate AI models cleanly into existing products and services
  • Cloud platform experience (Azure and/or AWS) and comfort deploying containerized workloads (Docker/Kubernetes) at scale
  • Solid grasp of the full ML lifecycle: data preprocessing, model evaluation, monitoring, and deployment — with an eye toward reliability and scalability in production, not just notebook experimentation
  • Git and standard version control practices

Strongly Preferred

  • Familiarity with MLOps tooling and practices (CI/CD for ML, model versioning, monitoring/observability)
  • Experience with data pipelines and ETL processes, and working with both structured and unstructured data
  • Understanding of responsible AI, privacy, and security practices in AI systems
  • Experience with MCP (Model Context Protocol) tools or similar emerging agent-tooling standards

What You'll Do

  • Architect and build AI-powered applications and services designed to scale beyond a proof of concept
  • Fine-tune and productionize ML/GenAI models, integrating them into existing products, workflows, and APIs
  • Design retrieval-augmented generation and agent-based workflows for real business use cases
  • Make sound engineering trade-offs on system design, performance, and maintainability as usage grows

Soft Skills

  • Strong problem-solving and communication skills; able to explain technical trade-offs to non-technical stakeholders
  • Comfortable owning ambiguous problems and working independently in a fast-paced environment
  • Collaborative — works well across engineering, data science, and product teams

More Info

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Key Skills

embeddings

scikit-learn

vector databases

automation workflows

model evaluation

ML lifecycle

data preprocessing

LLMs

generative AI

retrieval-augmented generation

prompt engineering

RAG

AI agents

About Company