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Lead Data Scientist – Supply Chain

Job in Irving, Dallas County, Texas, 75084, USA
Listing for: McKesson’s Corporate
Full Time position
Listed on 2026-02-21
Job specializations:
  • IT/Tech
    Data Scientist, Data Analyst, AI Engineer, Machine Learning/ ML Engineer
Salary/Wage Range or Industry Benchmark: 158000 - 263300 USD Yearly USD 158000.00 263300.00 YEAR
Job Description & How to Apply Below
Lead Data Scientist – Supply Chain page is loaded## Lead Data Scientist – Supply Chain remote type:
Hybrid locations:
USA, TX, Irving time type:
Full time posted on:
Posted Todayjob requisition :
JR0143224

McKesson is an impact-driven, Fortune 10 company that touches virtually every aspect of healthcare. We are known for delivering insights, products, and services that make quality care more accessible and affordable. Here, we focus on the health, happiness, and well-being of you and those we serve – we care.

What you do at McKesson matters. We foster a culture where you can grow, make an impact, and are empowered to bring new ideas. Together, we thrive as we shape the future of health for patients, our communities, and our people. If you want to be part of tomorrow’s health today, we want to hear from you.
** Job Description
** The Lead Data Scientist, Supply Chain - Operations Research role is responsible for architecting and implementing AI/ML products to enhance the efficiency and effectiveness of McKesson’s supply chain operations as part of a McKesson’s Supply Chain & Operations COE.Our team applies data science methodologies to interdisciplinary business problems across Operations & Supply Chain. This position will work on strategic in-flight use cases around inventory and working capital management.

The position’s objectives are:
* Develop stochastic models to facilitate next best actions across Supply Chain
* Architect and lead implementation of AI/ML driven operation research frameworks to optimize enterprise inventory management systems
* Lead development of enterprise-scale digital twin for inventory management

The candidate should possess the ability to perform statistical modelling techniques and derive business insights that are required to drive analytic innovation  candidate should also be an active learner able to grasp and apply new analytic approaches, as well as mentor junior / developing resources.
** Position Description
** The purpose of this position is to architect, implement, drive adoption, and measure impact of innovative analytic solutions at McKesson, as well as make significant improvements to existing solutions.

Analytic Responsibilities
* Develop inventory optimization / multi-echelon simulation framework for supply chain
* Lead in development of statistical simulation decision frameworks
* Develop of AI/ML driven continuous monitoring systems in order to dynamically track McKesson network and continuously identify areas of working capital opportunity
* Play a leading role in adding Reinforcement Learning to set dynamic prices & safety stocks

Other Responsibilities
* Support stakeholders’ analytic needs, gather user requirements, help drive adoption
* Cultivate business development opportunities
* Assist in developing and maintaining long-term stakeholder relationships and networks
** Minimum Requirements
*
* Experience:

7+ years data science / analytics / programming experience based on combination of industry and academic experience

Education:

bachelor’s degree in a technical field such as:
Operations Research, Computer Science, Statistics, Applied Mathematics, Engineering or related quantitative / STEM majors. Masters and/or PhD preferred.
** Critical Skills
*** Experience with one or more of optimization toolkits/libraries like CPlex, Gurobi, XPress

MP, Open-source solvers (CBC, GLPK) etc
* Deep knowledge of statistical methods, advanced modeling techniques, along with optimization & OR techniques
* Demonstrated experience with solving enterprise inventory optimization and/or transportation optimization problems
* Ability to communicate your results from deeply technical to non-technical audiences
* Demonstrated ability to tackle problems across the full data stack, from data wrangling (leveraging SQL or other methodologies) to stakeholder consumption at scale
* Deep knowledge of machine learning / data science best practices
* Knowledge of statistical programming (SAS, R, MATLAB)
* Ability to communicate technical concepts to non-technical audiences
* Demonstrated experience with objected oriented programming (Python, Java, C#, VBA, etc.)
* Strong grasp of fundamental statistical concepts:…
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