Balyasny Asset Management L.P.

Lead Data Engineer

Balyasny Asset Management L.P.$130K — $160K *
Enterprise Technology
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • Significant experience in building and managing production data platforms and analytics-ready data products.
  • Strong skills in Python and SQL, familiar with both relational and NoSQL databases.
  • In-depth knowledge of Snowflake or similar modern cloud data warehouses.
  • Hands-on experience with AWS services ensuring secure, scalable production architectures.
  • Experience orchestrating workflows with Airflow or similar tools.
  • Familiarity with cloud infrastructure such as AWS, Azure, or Google Cloud.
  • Strong understanding of data modeling and performance with large-scale datasets.

Responsibilities

  • Lead the design and delivery of scalable data ingestion pipelines and models using Python, SQL, and Snowflake.
  • Architect reliable solutions for diverse datasets focusing on performance and usability.
  • Drive the development of the Data Acquisition Platform, including APIs and AI-enabled workflows.
  • Establish and enhance automated data-quality frameworks for completeness and schema integrity.
  • Own and enforce technical standards for testing and incident response across datasets.
  • Lead root-cause analysis for data incidents and implement corrective actions.
  • Mentor engineers through code reviews and technical coaching to shape engineering culture.

Benefits

  • Opportunities for people-management responsibilities and career development.
  • Cross-functional partnerships with analysts and portfolio managers.
  • Influence technical direction and evangelize data engineering best practices.
  • Engage in a collaborative environment with a focus on mentorship and continuous improvement.
Full Job Description
Role Overview

We are seeking a hands-on Senior / Lead Data Engineer to provide technical leadership for the platforms, pipelines, and data products that power analytics, applications, and investment decision-making across the firm. You will architect scalable, cloud-first data solutions; set engineering standards; and lead small teams through delivery of reliable, analytics-ready datasets and services.

This role combines deep technical execution with mentorship, cross-functional partnership, and ownership of complex data initiatives. It offers the opportunity to take on people-management responsibilities over time.

What You'll Do
• Lead the design and delivery of scalable ingestion pipelines, data models, and platform services using Python, SQL, Snowflake, and AWS.
• Architect reliable solutions for structured, unstructured, market, and alternative datasets, with particular focus on performance, lineage, usability, and operational resilience.
• Drive the evolution of the Data Acquisition Platform, including APIs, services, plugins, and AI-enabled workflows for onboarding, pipeline creation, metadata generation, and natural-language data access.
• Establish and improve automated data-quality frameworks covering completeness, freshness, schema integrity, reconciliations, and business-rule validation.
• Own technical standards for testing, observability, alerting, incident response, and production support across a large and growing dataset estate.
• Lead root-cause analysis for complex, time-sensitive data incidents and drive durable corrective actions.
• Mentor engineers through design reviews, code reviews, pairing, and technical coaching; help shape team practices and engineering culture.
• Partner directly with Analysts, Quants, Portfolio Managers, and external data providers to translate requirements into robust end-to-end data solutions.
• Evangelize data engineering best practices and influence technical direction across partner teams.
• Potentially manage a small team, including prioritization, delivery planning, feedback, and career development.

What You'll Bring
• Significant experience building and operating production data platforms, pipelines, and analytics-ready data products.
• Strong Python and SQL skills, with experience across relational and NoSQL data systems.
• Deep experience with Snowflake or comparable modern cloud data warehouses.
• Strong hands-on experience with AWS data and cloud services, including designing secure, scalable, and cost-effective production architectures.
• Experience designing and orchestrating production workflows with Airflow or comparable tools.
• Cloud infrastructure experience in AWS, Azure, or Google Cloud.
• Strong understanding of data modeling, large-scale dataset performance, time-series data, and temporal-query patterns.
• Demonstrated ability to lead technical projects end-to-end, make sound architectural decisions, and improve existing complex systems.
• A track record of mentoring engineers and communicating effectively with both technical and business stakeholders.

Nice to Have
• Experience with Go and service-oriented platform development.
• Experience applying AI/LLM capabilities to data engineering workflows.
• Financial-services or market-data experience.

About Balyasny Asset Management L.P.

Balyasny Asset Management L.P. is a global investment firm that manages hedge funds and private investment funds. The company was founded in 2001 by Dmitry Balyasny and is headquartered in Chicago, Illinois, with additional offices in New York, London, Hong Kong, and Singapore. Balyasny Asset Management L.P. employs a multi-strategy approach to investing and focuses on generating alpha through a combination of fundamental analysis and quantitative research. The company has a strong track record of performance and has received numerous awards for its investment strategies.
Learn more about Balyasny Asset Management L.P.
Size
1,000 employees
Industry
Net Income
$200 million
Founded
2001
5 Year Trend
+20%
Revenue
$1 billion

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