JP Morgan Chase & Co.

Data Analytics Engineer - Senior Associate

JP Morgan Chase & Co.$100K — $130K *
Information Technology
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • 3+ years as an Analytics Engineer or related role, with a Master's degree in a relevant field.
  • Advanced SQL skills, including performance tuning and complex joins.
  • Deep understanding of data modeling principles, including facts/dimensions and metric design.
  • Experience building or operating a semantic layer or metrics framework for standardized KPI definitions.
  • Familiarity with semi-structured data (JSON) and NoSQL sources for analytics.
  • Knowledge of data governance concepts like RBAC and data lineage.
  • Hands-on experience with Snowflake and/or Databricks in an analytics context.
  • Practical skills in Python for data workflows such as validation and automation.

Responsibilities

  • Lead the development of analytics data models optimized for reporting and self-service.
  • Design and maintain a semantic layer for consistent metrics and dimensions across analyses.
  • Translate stakeholder requirements into clear modeling deliverables and metrics definitions.
  • Build transformations in SQL and utilize Python for complex data logic as needed.
  • Implement data quality controls tied to critical business metrics.
  • Optimize performance in Snowflake/Databricks and collaborate on source system alignment.
  • Establish modeling standards and support the adoption of the semantic layer through documentation.

Benefits

  • Opportunity to work on high-impact projects within a leading financial institution.
  • Collaborative work environment with cross-functional teamwork.
  • Access to advanced analytics tools and technologies.
  • Professional development opportunities in the field of data analytics.
  • Health and wellness benefits tailored for employees' needs.
Full Job Description
JOB DESCRIPTION

JPMorganChase's Commercial and Investment Bank Finance and Business Management team is looking for a strategic, analytical, and energetic professional to support the team and partner with the business and help achieve their goals.

As a Data Analytics Engineer - Senior Associate within the Commercial and Investment Bank Finance and Business Management team, you will build analytics-ready data models and a trusted semantic layer that standardizes business metrics. You will partner with stakeholders to translate requirements into well-modeled datasets in Databricks/Snowflake, using SQL (primary) , Python, ETL, and strong data modeling + semantic layer practices. This role is geared toward analytics enablement: designing curated data products, defining consistent metrics, and enabling scalable self-service reporting. You’ll work closely with analytics, product, and engineering partners to turn business questions into governed, reusable models and semantic definitions. You will own the structure and usability of downstream analytics - defining grains, dimensions, facts, conformed entities, and metric logic - so teams can move faster with confidence. You will also collaborate with upstream data engineering to ensure source-to-model alignment and ensure data quality and documentation meet a high bar. The successful candidate will bring consistent KPI definitions across dashboards, clear semantic conventions, performant and well-documented models, and a data ecosystem where consumers trust and reuse what’s been built.

 

Job Responsibilities

  • Lead development of analytics data models (dimensional and/or domain-oriented) optimized for reporting, BI, and self-service consumption.
  • Design and maintain a semantic layer (standardized metrics, dimensions, entities, and business definitions) to ensure consistency across dashboards and analyses.
  • Translate stakeholder requirements into clear modeling deliverables (entities, grains, metric definitions, acceptance criteria).
  • Build transformations primarily in SQL, leveraging Python when needed for complex logic, automation, or validation.
  • Implement and champion data quality controls (tests, reconciliations, anomaly checks) tied to business-critical metrics.
  • Optimize model performance in Snowflake and/or Databricks (efficient joins, partitioning/clustering strategies where applicable, cost/performance trade-offs) and collaborate with upstream teams on source system understanding (including NoSQL/semi-structured data) and ensure analytics models reflect correct business meaning.
  • Establish modeling standards: naming conventions, documentation, lineage, metric governance, and change management for semantic definitions and support enablement: document curated datasets, create user guidance, and help consumers adopt the semantic layer correctly.

Required qualifications, capabilities and skills

  • 3+ years of experience as an Analytics Engineer or related role with Master's degree in Information Technology, Computer Science, Management Information Systems, Operations Research or related field. 
  • Advanced SQL skills (complex joins, performance tuning, incremental logic).
  • Strong understanding of data modeling (facts/dimensions, grains, conformed dimensions, SCDs, metric design).
  • Demonstrated experience building or operating a semantic layer / metrics framework (tool-agnostic; ability to standardize KPI logic and definitions).
  • Comfort working with semi-structured data (JSON) and NoSQL sources and modeling them for analytics.
  • Exposure to data governance concepts (RBAC, data classification, lineage, audit requirements).
  • Working experience with Snowflake and/or Databricks in an analytics context.
  • Practical Python skills for data workflows (validation, automation, notebooks/scripts).
  • Ability to partner with stakeholders, clarify ambiguous requirements, and drive to measurable outcomes.
  • Strong documentation habits and attention to data correctness.
Preferred qualifications, capabilities and skills
  • Experience with testing and documentation.
  • Familiarity with BI tooling and semantic consumption patterns (e.g., Tableau/Sigma/Looker concepts).
  • Knowledge of orchestration and observability (Airflow/Dagster/ADF; logging/alerting; SLA mindset).

     

 

About JP Morgan Chase & Co.

JP Morgan Chase & Co. stands at the forefront of the global financial services industry. They offer an expansive array of products and services to a diverse clientele, including individuals, corporations, governments, and institutions. Ever since the merger of J.P. Morgan & Co. and Chase Manhattan Corporation in 2000, this industry-leading entity has become renowned for its comprehensive portfolio encompassing consumer and community banking, corporate and investment banking, commercial banking, as well as asset and wealth management. Headquartered in the vibrant city of New York, JP Morgan Chase & Co. boasts a formidable presence across over 100 countries worldwide.

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Preparation is key to succeeding in your interview with JP Morgan Chase. Familiarize yourself with the company's business segments, values, and recent achievements. Demonstrating how your background and aspirations match the company's goals can significantly increase your chances of employment. A World of Job Opportunites in the Financial Services Industry JP Morgan Chase & Co. offers a world of job opportunities for those seeking to make their mark in the financial services industry. With competitive salaries, comprehensive benefits, and endless possibilities for growth, positions at JP Morgan Chase are highly coveted. By staying informed through job sites, tailoring your applications, and preparing thoroughly for interviews, you can enhance your prospects of joining the esteemed ranks of JP Morgan Chase employees. Explore the job board, seize the job opportunities, and embark on a rewarding career journey with one of the world's leading financial institutions.
Learn more about JP Morgan Chase & Co.
Size
661 employees
Market Cap
$384.5 billion
Industry
Net Income
$29.1 billion
Founded
1823
5 Year Trend
+0.7%
Revenue
$261.5 million
NASDAQ

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