Data Scientist Senior Associate

JPMorganChase·Oracle Recruiting
Plano, TXFull-timePosted Jul 1, 2026
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As a Data Scientist within the Auto Finance Data & Analytics team, you will leverage advance analytics and AI/ML to support product teams, build analytical solutions, guide strategic business decisions, and enable growth initiatives.

You will partner closely with Product, Technology, Design, Risk, and other cross-functional teams to translate complex business questions into analytical and AI/ML solutions. The ideal candidate is a hands-on analytics practitioner who combines strong technical skills, business judgment, intellectual curiosity, and a passion for applying modern analytics and technology to deliver business outcomes.

Job Responsibilities:

  • Conduct deep-dive analyses to generate actionable insights and recommendations that streamline business processes and uncover potential areas for product innovation and growth
  • Present insights and recommendations to Auto Business leaders using data-driven storytelling to help guide the strategic direction of the organization  
  • Partner with Business, Product and Technology teams to implement data-driven strategies and models/algorithms that drive business growth and customer engagement
  • Develop and apply advanced statistical analyses and mathematical models to analyze complex data trends and patterns
  • Leverage AI tools (e.g., LLM Suite, GitHub Copilot, etc.) to work more efficiently, accelerate analysis, and identify opportunities for innovation
  • Understand end-to-end digital customer engagement funnel and derive insights on how to improve conversion rates
  • Evolve and refine measurement frameworks and KPIs for customer measurement, highlighting anomalies or trends to senior leaders

 

 

Required qualification, capabilities and skills:

  • 3+ years relevant experience in AI/ML, data science, or related fields.
  • Strong background in analyzing and translating digital customer behavior data into actionable insights and recommendations for Business leaders. Experience defining KPIs, measurement frameworks, and anomaly monitoring for digital products.
  • Proficient in developing predictive models and utilizing ML algorithms such as logistic regression, KNN, random forest, and Gradient boosting for classification problems.
  • Solid understanding of statistical concepts for data analysis and experience with designing and evaluating A/B experiments.
  • Experience with Adobe Analytics, Tableau, Alteryx, SQL, Python, and AWS.
  • Expertise in prompt engineering and AI-assisted development using LLM Suite, GitHub Copilot Skills, VS Code, etc. to improve LLM output quality and reliability while boosting daily workflow productivity and innovation.
  • Experience in building Conversational AI applications and in orchestrating AI/ML services for building a complete solution.
  • Demonstrated initiative in learning and applying AI/LLM technologies to business problems and projects.
  • Skilled in synthesizing and presenting business insights, recommendations and complex analytical results to executives, business partners, and technical resources across various teams.
     

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