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Data Scientist

3SC

2 - 5 years

Bengaluru

Posted: 02/05/2026

Job Description

We are looking for a Data Scientist Supply Chain Optimization with 2+ years of relevant experience in solving complex business problems using mathematical optimization, heuristics, and Python-based solution development.

The ideal candidate should have strong expertise in MILP, heuristic and meta-heuristic techniques, along with a solid understanding of supply chain planning and operational decision-making. This role involves designing practical and scalable optimization solutions for real-world enterprise use cases such as production scheduling, inventory optimization, supply planning, allocation, and logistics optimization.

The candidate should be comfortable translating business requirements into mathematical models, building robust Python-based solutions, and working closely with business, product, and engineering teams to deliver deployable decision science solutions.


Must Have

  • 2+ years of relevant experience in Data Science, Operations Research, Optimization, or Decision Science
  • Strong hands-on expertise in:
  • MILP (Mixed Integer Linear Programming)
  • Linear / Integer Programming
  • Heuristic algorithms
  • Meta-Heuristic techniques (e.g., Genetic Algorithms, Simulated Annealing, Tabu Search, etc.)
  • Strong proficiency in Python for model development and solution building
  • Experience with one or more optimization frameworks / solvers such as:
  • Pyomo
  • PuLP
  • OR-Tools
  • Gurobi / CPLEX (preferred)
  • Strong understanding of Supply Chain domain, with experience in one or more of the following areas:
  • Supply Planning
  • Production Planning / Scheduling
  • Inventory Optimization
  • Allocation / Replenishment
  • Transportation / Logistics Optimization
  • Strong problem-solving and analytical thinking skills
  • Ability to formulate business problems into:
  • Decision variables
  • Constraints
  • Objective functions
  • Scenario / what-if models
  • Experience building clean, modular, and maintainable Python solutions suitable for production environments
  • Basic understanding of:


  1. Packaging and deployment of Python applications / services
  2. Linux / command-line fundamentals
  3. Docker / containers
  • Ability to collaborate effectively with cross-functional teams including business, product, engineering, and data teams


Good to Have

  • Experience in real-world supply chain optimization deployments in production or enterprise environments
  • Exposure to large-scale combinatorial optimization and performance tuning of optimization models
  • Experience with hybrid solution approaches combining exact optimization with heuristics / rule-based methods
  • Familiarity with:


  1. SQL
  2. Pandas / NumPy
  3. FastAPI / Flask for model serving
  4. Git / version control


  • Exposure to cloud environments such as AWS / Azure / GCP
  • Understanding of simulation, scenario planning, or decision intelligence platforms
  • Exposure to Agentic AI / Agentic Systems or AI-assisted decision support concepts, such as:
  • Multi-agent workflows
  • Tool orchestration
  • RAG / context-aware AI systems
  • LLM-assisted decision support
  • Ability to explain optimization logic, assumptions, and outputs clearly to business stakeholders

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