Live opening · Posted 5 days ago

Data Science Senior Associate - Marketing Analytics

JPMorgan Chase · Plano, TX, United States | New York, NY, United States
Oracle
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At a glance

The key details from the original listing.

Posted 5 days ago
CompanyJPMorgan Chase
LocationPlano, TX, United States | New York, NY, United States
SourceOracle
Listed5 days ago

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About the role

Description supplied by the original job listing.

You will join a collaborative team that applies advanced modeling, machine learning, and applied AI to profile clients across all lines of business, improve customer experience, and enable business performance at scale. You will take on the toughest analytical challenges the team faces—from customer segmentation to digital marketing to AI-enabled and agentic alert systems—and turn them around with speed and rigor. You will work on high-visibility initiatives, partner closely with business and technology teams, and help move ideas from concept into implemented solutions embedded in day-to-day workflows. You will also have opportunities to grow through mentoring, training, and mobility.
As a Data Scientist Associate Senior at JPMorganChase within the Consumer & Community Banking Data and Analytics organization, you will operate as a senior technical contributor and force-multiplier for the team. You will independently own end-to-end modeling solutions—framing ambiguous problems, building and validating models, and driving them into production—while helping set technical direction and elevating the work of others. You will ensure solutions are statistically sound, aligned to business objectives, delivered quickly, and integrated into business processes to drive adoption and measurable impact.
Job responsibilities
Own the team's highest-priority modeling problems end to end, framing ambiguous questions and delivering rigorous solutions on tight timelines
Design, build, validate, and deploy advanced models spanning customer segmentation, digital marketing, and AI-enabled and agentic alert systems
Translate business objectives into well-scoped modeling problems with clear success criteria and measurable outcomes
Apply machine learning, statistical, and mathematical methods to develop novel solutions—including unsupervised methods such as PCA and k-means, supervised methods such as regression, tree-based models, and gradient-boosted algorithms, as well as causal inference, forecasting, and simulations
Build applied AI and agentic solutions, including large language model-based systems, prompt engineering, and developer and AI assistants
Serve as a technical lead on complex workstreams, helping direct and prioritize team efforts and unblocking others
Communicate results, insights, and recommendations clearly to business stakeholders, technology partners, and senior leadership
Partner with data science, engineering, product, and design teams to ensure solutions are feasible, scalable, and production-ready
Mentor and guide teammates on modeling approaches, code quality, and analytical rigor
Manage multiple engagements by prioritizing work, tracking dependencies, and escalating risks and tradeoffs proactively
Required qualifications, capabilities, and skills
Formal training or certification on data science concepts and 3+ years applied experience
Undergraduate degree in a quantitative discipline or equivalent practical experience
Strong programming skills in Python, including the modern data science and machine learning ecosystem
Deep machine learning expertise across the full model lifecycle—feature engineering, training, validation, deployment, and monitoring
Strong statistical and mathematical foundation, with the ability to select and apply the right technique to novel and ambiguous problems
Applied AI engineering experience, including building large language model-based and/or agentic solutions and prompt engineering
Proficiency with SQL and data querying at scale
Demonstrated ownership mindset and ability to operate independently in ambiguous, fast-moving problem spaces
Strong written, verbal, and presentation skills, with experience communicating effectively with both business and technology audiences, including senior leadership
Ability to guide, mentor, and influence teammates and cross-functional partners
Preferred qualifications, capabilities, and skills
Graduate degree (Master's or PhD) in a quantitative discipline
Experience in financial services or retail banking
Experience with modern data platforms such as Snowflake or Databricks
Experience productionizing models and integrating them into business workflows
Familiarity with experimentation, model lifecycle management, and machine learning operations practices

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