JC
JPMorgan Chase
Data Scientist

Quant Analytics, Senior Associate - Home Lending

On-siteMidData ScientistJust posted
✦Role summaryAI-generated

This position focuses on leveraging advanced analytics and machine learning to drive strategic decisions in JPMorgan Chase’s home lending business. The analyst will collaborate with cross‑functional teams to translate complex data insights into actionable recommendations and automate processes to improve customer outcomes.

Skills required

About this role

Help shape the future of our home lending business by turning data into decisions that create better outcomes for customers and the firm. You’ll take on high-impact, strategic questions, work side-by-side with cross-functional partners, and translate complex analysis into clear, actionable recommendations for leaders. This role is ideal for a critical thinker and strong communicator who thrives in fast-moving environments—bringing structure to ambiguity, adapting quickly as priorities evolve, and driving alignment. You’ll also spot opportunities to modernize how we work by automating insights and innovating with advanced analytics, AI and machine learning.

Job summary

As a Quant Analytics, Senior Associate - Home Lending, you’ll source, integrate, and analyze data to uncover insights that drive measurable business value and improve the overall customer relationship. You’ll combine quantitative analysis with business context to explain performance, identify key drivers, and recommend actions that support growth—including strategies that encourage broader engagement across the firm. You’ll build and automate dashboards and reporting that make performance tracking easier and decision-making faster. You’ll partner across teams to deliver analytics solutions for complex business challenges and support strategic initiatives shaping the future of home lending.

Job responsibilities

  • Partner with Sales, Marketing, Product, Finance, and Data & Analytics stakeholders to align on priorities and deliver data-driven solutions.
  • Source and integrate data from multiple platforms to enable consistent, reliable performance measurement.
  • Perform descriptive, diagnostic, and predictive analyses to identify trends, patterns, and actionable insights.
  • Develop clear narratives that explain what happened, why it happened, and what actions to take next.
  • Conduct deep-dive analyses to quantify drivers of performance and recommend actions to improve KPIs and relationship value.
  • Build analytical frameworks that support complex business priorities and strategic initiatives.
  • Design, automate, and maintain interactive dashboards for KPI tracking and stakeholder reporting.
  • Identify opportunities to enhance business intelligence tooling and self-service reporting.
  • Support strategic initiatives by translating analysis into clear, actionable recommendations for senior stakeholders.
  • Collaborate on artificial intelligence and machine learning solutions to automate processes and develop new analytical capabilities.

Required qualifications, capabilities, and skills

  • Bachelor’s degree in the fields above plus 4 years of relevant experience in an analytics-focused role (e.g., Data Scientist, Senior Analyst, Senior Engineer, or similar).
  • Advanced SQL skills to query, transform, and validate data from multiple sources.
  • Strong Python skills to automate workflows, support analytics, and enable repeatable reporting.
  • Experience defining, tracking, and evaluating KPIs, including pre- and post-analysis to measure impact.
  • Proficiency building and maintaining interactive dashboards and stakeholder-facing reporting.
  • Ability to design and build end-to-end analytical tools and solutions.
  • Demonstrated critical thinking and structured problem-solving skills for complex, ambiguous business questions.
  • Strong collaboration and communication skills, including the ability to synthesize findings into actionable recommendations for senior stakeholders.
  • Familiarity with cloud data platforms (e.g., AWS) and modern data warehouses (e.g., Snowflake), plus an understanding of large-scale data architecture.
  • Ability to adapt quickly to changing priorities while maintaining high-quality analytical output.
  • Successful use of generative AI prompting to accelerate analyses, improve consistency and quality of outputs, and support automation of repeatable workflows.

Preferred qualifications, capabilities, and skills

  • Master’s degree in Information Systems, Computer Information Systems, Computer Science, Mathematics, Statistics, Engineering, Operations Research, or related field plus 2 years of relevant experience in an analytics-focused role (e.g., Data Scientist, Senior Analyst, Senior Engineer, or similar).
  • Experience supporting analytics in home lending, consumer finance, or a related industry.
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