Jobs · Oklahoma

Advanced Forward Engineering - Data Engineer - Senior

EY · Tulsa, OK · 2 days ago
Hybrid$107k–$177k/yrFull-time

About the role

The Advanced Forward Engineering (AFE) team within EY's Office of the CTO is made up of Forward Deployed Engineers (FDEs) embedded with strategic customers to ensure optimal customer experiences with EY’s products. We are currently seeking a Data Engineer to join AFE delivery pods, where AI-native systems are deployed directly into highly regulated client environments such as tax, finance, and risk.

Responsibilities

  • Serve as the data owner within an AFE delivery pod, ensuring data readiness does not hinder delivery outcomes.
  • Design and implement data ingestion, transformation, and access patterns that integrate AI systems with client and legacy data sources.
  • Ensure data pipelines comply with governance, security, lineage, and access control requirements mandated by regulated environments.
  • Implement data interfaces and contracts that meet DevOps Specification (DS) data requirements for supported deployment templates.
  • Partner closely with Forward Deployed Software Engineer roles to enable AI workflows, retrieval, and analytics that are reliable in production.
  • Diagnose and resolve data quality, schema drift, and integration issues encountered in real deployment scenarios.
  • Contribute reusable data patterns and implementation learnings back to the AFE integration core to improve repeatability across pods.
  • Support validation, testing, and deployment activities to ensure data flows behave correctly and consistently across environments (dev, test, pre-prod, prod).

Requirements

  • Deep expertise with industry standard database and data management systems (Postgres, Oracle, Databricks, SnowFlake, BigQuery, RedShift, Azure Data Factory, Kafka, Flink, Spark).
  • Strong foundation in data engineering concepts applied to real production systems.
  • Capable of working effectively with imperfect, heterogeneous, and legacy data environments.
  • Experience in balancing delivery speed with data governance and compliance requirements.
  • Pragmatic problem-solver who can operate with ambiguity and incomplete information.
  • Clear communicator able to explain data constraints and tradeoffs to engineers and stakeholders.
  • Bias toward building durable, well-understood data interfaces rather than one-off solutions.
  • Curiosity and flexibility when working with evolving AI and data use cases.

Qualifications

  • Bachelor’s or Master’s degree in Computer Science or related technical field.
  • 5+ years of experience in data engineering, data integration, or analytics engineering roles.
  • Hands-on experience building and operating data pipelines in cloud or hybrid environments.
  • Experience integrating with relational databases, data warehouses, data lakes, or enterprise systems.
  • Familiarity with data modeling, transformation frameworks, and API-based data access.
  • Experience working under data governance, security, or compliance constraints.
  • Ability to collaborate closely with application engineers and operate in delivery-focused teams.

Skills and Attributes

  • Experience supporting AI, ML, or analytics-driven applications in production.
  • Familiarity with retrieval-based systems (e.g., search, embeddings, feature stores).
  • Exposure to regulated industry data environments (financial services, tax, healthcare).
  • Experience with hybrid or on-prem data integration scenarios.
  • Background in forward-deployed, consulting, or customer-facing engineering roles.

Benefits

At EY, we offer a comprehensive compensation and benefits package where you’ll be rewarded based on your performance and recognized for the value you bring to the business. The base salary range for this job in all geographic locations in the US is $106,900 to $176,500. The base salary range for New York City Metro Area, Washington State and California (excluding Sacramento) is $128,400 to $200,600. Individual salaries within those ranges are determined through a wide variety of factors including but not limited to education, experience, knowledge, skills and geography.

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