Full-Time

Data Engineer Vice President

Updated on 8/23/2026

Goldman Sachs

Goldman Sachs

10,001+ employees

Global investment banking and asset management

No salary listed

Company Historically Provides H1B Sponsorship

Dallas, TX, USA

In Person

Bachelor's, Master's

Category
DevOps & Infrastructure (1)
Required Skills
Kubernetes
Python
Software Testing
Apache Spark
SQL
Apache Kafka
Java
Data Engineering
Docker
Version Control
Hadoop
Data Modeling
DevOps
Databricks
Data Analysis
Snowflake

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Requirements
  • 7-12+ years of experience.
  • A bachelor's or master's degree in a relevant discipline, or equivalent practical experience, with evidence of strong quantitative skills or data engineering expertise.
  • Strong hands-on programming experience in Python or Java.
  • Good working knowledge of SQL, including troubleshooting, optimization and data analysis.
  • Ability to learn new tools, internal platforms and delivery workflows quickly.
  • Familiarity with software engineering fundamentals, including version control, testing, release discipline and continuous integration and continuous delivery practices.
  • Understanding of temporal data modelling, including the handling of historical state and change over time.
  • Knowledge of schema design, schema evolution and data compatibility considerations.
  • Understanding of partitioning, clustering and other techniques used to improve data performance at scale.
  • Ability to make sensible design choices across normalized and deformalized models, and between natural and surrogate keys.
  • Practical approach to data quality, reconciliation and root-cause analysis.
  • Experience building or supporting production data pipelines in a collaborative engineering environment.
  • Experience working with distributed data processing frameworks such as Apache Spark.
  • Working knowledge of common data formats such as JSON, Avro and Parquet.
  • Experience guiding implementation standards, code quality and engineering practices within a team.
  • Ability to lead delivery for a workstream, manage dependencies and support less experienced engineers.
Responsibilities
  • Build, enhance and support batch and streaming data pipelines on the Lakehouse and AI data platform.
  • Refactor or modernize existing data flows where needed to improve reliability, performance and maintainability.
  • Build reusable tooling where needed to improve delivery, consistency and operational support.
  • Ensure data pipelines are production-ready, well tested and operationally supportable.
  • Develop raw, refined and curated datasets that support analytics, reporting and AI use cases.
  • Apply data modelling principles to represent business entities, relationships and historical change accurately.
  • Work with consumers to shape usable and well-documented data products aligned to business needs.
  • Implement controls to validate completeness, accuracy and consistency of data across pipelines and datasets.
  • Use reconciliation approaches to build confidence in production outputs and investigate breaks where they arise.
  • Contribute to standards for testing, monitoring and issue resolution.
  • Improve testing, monitoring or reconciliation tooling where these strengthen platform reliability and day-to-day delivery.
  • Work closely with engineers, platform teams and data consumers to deliver agreed outcomes to time and quality expectations.
  • Communicate progress, risks, dependencies and design choices, including where delivery would benefit from improvements to shared platform tooling.
  • Contribute to technical design, task breakdown and support for junior engineers as a more senior candidate.
  • Work with data processing and logic technologies such as ANSI SQL, Apache Spark and Kafka.
  • Work with data formats such as JSON, Avro and Parquet.
  • Work with platforms and storage technologies such as Snowflake, Apache Iceberg, Databricks, Hadoop ecosystem technologies and Sybase IQ.
  • Use CI/CD tooling and containerized or Kubernetes-based deployment approaches where relevant.
Desired Qualifications
  • Experience with comparable modern data-stack technologies beyond the examples listed.
  • Sound judgement in technical trade-offs.
  • Attention to detail in data correctness and testing.
  • A clear and structured approach to problem solving.
  • Willingness to work closely with stakeholders and partner teams.
  • Interest in developing long-term expertise within the firm.

Goldman Sachs provides financial services for corporations, governments, institutions, and individuals, including advisory on mergers and acquisitions, underwriting and distributing securities, asset and wealth management, and market making across fixed income, currencies, commodities, and equities. Its products work by delivering strategic advice, financing, liquidity, and asset management across multiple classes, using client funds and its own capital to raise, deploy, and manage capital for clients. The firm differentiates itself through its global scale, comprehensive range of services, deep client relationships, and long-standing presence in capital markets. Its goal is to help clients raise and deploy capital, manage risk, and grow wealth while earning fees and returns from advisory, trading, lending, and asset management activities.

Company Size

10,001+

Company Stage

IPO

Headquarters

New York City, New York

Founded

1869

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Simplify's Take

What believers are saying

  • Goldman joined Nvidia’s $500 billion AI financing initiative on August 10, 2026.
  • Goldman’s second-quarter 2026 profit beat estimates on record equities revenue and dealmaking.
  • The August 12, 2026 NEOS acquisition expands active ETFs to $80 billion.

What critics are saying

  • Goldman paid $500 million in 2026 to settle 1MDB shareholder claims.
  • A London tribunal awarded £1.45 million against Goldman in July 2026 for discrimination.
  • If AI financing underperforms, Goldman’s expensive NEOS and infrastructure bets compress returns by 2027.

What makes Goldman Sachs unique

  • Goldman advised on $1.2 trillion M&A in first-half 2026, ahead of rivals.
  • Its franchise spans banking, markets, wealth, and asset management across global clients.
  • Goldman combines investment banking distribution with balance-sheet capital, private credit, and ETF manufacturing.

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Benefits

Health Insurance

Dental Insurance

Vision Insurance

Life Insurance

Disability Insurance

Health Savings Account/Flexible Spending Account

Paid Vacation

Paid Sick Leave

Paid Holidays

Professional Development Budget

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