Data Scientist Intern

Cencora•Conshohocken, PA

About The Position

Our team members are at the heart of everything we do. At Cencora, we are united in our responsibility to create healthier futures, and every person here is essential to us being able to deliver on that purpose. If you want to make a difference at the center of health, come join our innovative company and help us improve the lives of people and animals everywhere. Apply today! About Cencora: Cencora is one of the largest drug wholesale and distribution companies in the world. Ranked among the top 10 on the Fortune 500, it serves as a critical link between pharmaceutical manufacturers, healthcare providers, pharmacies, health systems, and patients. Why Join Us: At Cencora, data scientists work on high-impact problems at the intersection of healthcare, supply chain, operations, finance, and strategy. As a Data Scientist Intern, you'll join a team that values curiosity, rigor, and real-world impact. You'll receive mentorship and guidance from experienced practitioners while building your skills across statistics, machine learning, data engineering, and business problem-solving — all in a domain where your work contributes to healthier outcomes for customers and patients.

Requirements

  • Ability to explain your analyses and results clearly, especially within familiar contexts.
  • A learning mindset — genuine curiosity about data science methods, business problems, and the healthcare and supply chain domains.
  • Strong attention to detail, follow-through, and a collaborative working style.
  • Currently pursuing a bachelor’s degree in data science, Statistics, Mathematics, Computer Science, Engineering, Economics, or a related quantitative field.
  • Foundational programming skills in Python and SQL.
  • Understanding of core statistical concepts (e.g., hypothesis testing, regression, probability) and introductory machine learning techniques.
  • Experience preparing and working with data, including cleaning, transformation, and quality assessment through coursework, internships, or projects.
  • Familiarity with version control concepts (e.g., Git).

Nice To Haves

  • Internship or project experience involving applied analytics, data science, or machine learning.
  • Exposure to healthcare, pharmaceutical, supply chain, or logistics domains.
  • Exposure to cloud-based data platforms or modern analytics ecosystems (e.g., Databricks, Azure).

Responsibilities

  • Explore, clean, and prepare structured datasets from internal and external sources to support analysis and modeling efforts.
  • Build, test, and validate statistical and machine learning models under the guidance of senior team members — applying established methods to well-defined business problems.
  • Support data pipeline development and maintenance tasks — including data extraction, transformation, and loading.
  • Assist with model deployment, testing, and monitoring activities in production environments.
  • Create documentation that communicates findings, methodology, and recommendations to technical and business audiences.
  • Collaborate with other data scientists, data engineers, analysts, and business stakeholders to contribute to team deliverables and project milestones.
  • Follow team standards for code quality, version control, reproducibility, and responsible use of data — including privacy, fairness, and compliance with enterprise governance requirements.
  • Participate in team knowledge-sharing sessions and pursue continuous learning to deepen your technical and domain expertise.

Benefits

  • medical
  • dental
  • vision care
  • backup dependent care
  • adoption assistance
  • infertility coverage
  • family building support
  • behavioral health solutions
  • paid parental leave
  • paid caregiver leave
  • training programs
  • professional development resources
  • mentorship programs
  • employee resource groups
  • volunteer activities
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