Senior Lead Software Engineer - Data & Analytics
Listed on 2026-10-02
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Software Development
DevOps, Backend Developer, AI Engineer (Applied/Software), Software Engineer
We are looking for a curious, impact-driven engineer who thrives at the intersection of data, product, and platform — someone who can turn complex engineering signals into clear, compelling insights that drive decisions JPMorgan
Chase, we invest in the tools and talent that make great engineering possible, and this role sits at the heart of that mission.
As a Senior Lead Software Engineer at JPMorgan
Chase within the Engineering Efficiency and Analytics team, you will design and deliver a firmwide metrics and analytics platform that brings visibility to engineering performance, delivery health, and the measurable impact of AI-assisted development. You will work end-to-end — from data pipelines and backend services to modern web dashboards — partnering with engineering leaders and teams across the firm to define what "good" looks like and make it visible.
This is a broad, creative, T-shaped engineering role where your technical depth, analytical thinking, and storytelling ability will directly shape how the firm understands and improves its engineering capability.
Job responsibilities
- Design and implement modern web dashboards and end-to-end workflows that transform engineering data into clear, actionable insights for teams and leaders across the firm
- Build and operate reliable data pipelines that ingest, transform, validate, and publish metric datasets to power analytics experiences, integrating with platforms such as Databricks as needed
- Design, build, and maintain secure, scalable backend services and REST APIs that enable metric consumption and power the user interface
- Define and validate metric logic, perform exploratory and trend analysis, and translate findings into compelling dashboard narratives that inform engineering decisions
- Partner with engineering teams, leaders, and stakeholders to align on performance benchmarks and translate shared goals into a coherent metrics strategy
- Implement CI/CD pipelines, automated testing, secure coding standards, and code review practices to deliver production-grade, maintainable software
- Deploy and operate services on cloud and container platforms, ensuring reliability, scalability, and operational excellence
- Leverages enterprise-authorized AI coding assist tools within the work environment to improve code quality, delivery speed, and productivity (e.g., code generation/refactoring, unit test creation, documentation), while validating outputs through peer review, automated testing, and secure coding standards
- Applies knowledge of tools within the Software Development Life Cycle toolchain, including enterprise-authorized AI-assisted development and automation capabilities, to improve the value realized by automation
Required qualifications, capabilities, and skills
- Formal training or certification on software engineering concepts and advanced applied experience
- Full-stack engineering capability with demonstrated experience building dashboards and web experiences end-to-end, spanning frontend, back-of-frontend, and backend integration
- Experience working with SQL databases and analytical data stores at scale, including data warehouse concepts and query optimization
- Demonstrated engineering practices including CI/CD pipeline implementation, automated testing, and code review standards
- Analytical capability to develop and validate metrics — including exploratory analysis, cohort and trend analysis, and anomaly detection — and translate results into clear visual narratives
- Effective communication and stakeholder partnership skills, with the ability to align technical and non-technical audiences around shared goals
- Understanding of responsible AI use in engineering workflows, including data sensitivity considerations, secure handling of inputs/outputs, and…
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