Visa
Austin, TX, USA

Data Science, Intern - Summer 2026

Onsite$35 – $40/hrPosted 3 days agoLinkedIn

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About this role

Job Description

Join Visa’s Value Added Services organization as a Data Science Intern on the Risk & Security Services team. You’ll work alongside experienced ML engineers, data scientists, and risk analysts to help build ML‑powered systems that detect fraud, verify identities, and reduce friction for legitimate users at global scale.

This internship is designed to provide hands‑on exposure to real‑world fraud detection, anomaly detection, and AI‑assisted risk investigation systems, with mentorship and structured learning throughout the program.

All Visa roles require digital fluency, including the ability to work with emerging technologies such as Generative AI tools (e.g. ChatGPT, Microsoft Copilot) to support everyday work.

What You’ll Do

  • Collaborate with product managers, risk analysts, and engineers to understand fraud and identity use cases and translate them into data and modeling tasks.
  • Support the development of AI‑assisted workflows that help triage risk alerts, enrich signals, or recommend next actions.
  • Contribute to LLM or RAG‑backed components that summarize evidence or assist analysts in investigations, following clear guardrails and review processes.
  • Write clean, testable Python and SQL code for batch or streaming data jobs under mentorship.
  • Help monitor model performance and data quality, and assist with dashboards, metrics, or experiments to evaluate impact.
  • Learn and apply privacy, security, and responsible AI practices when working with sensitive financial data.
  • Document designs, experiments, and findings; share progress in team meetings or demos.
  • Participate in code reviews, sprint ceremonies, and team stand‑ups, with support from senior engineers.

What You’ll Gain

  • Hands‑on experience building ML systems used in real‑time financial risk decisioning.
  • Mentorship from senior ML engineers and data scientists.
  • Exposure to production ML, model monitoring, and governance in a regulated environment.
  • Experience working in a large‑scale, global engineering organization.
  • A strong foundation for future roles in ML engineering, applied data science, or risk analytics.