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Castleton Tower
New York, NY, United States
Source: Castleton Tower careers · View original posting
From Castleton Tower's posting. “We” and “our” refer to the employer.
The Firm
Castleton Tower is a boutique consulting firm founded by executives who have built and led quantitative research, data science, and technology teams at top-tier hedge funds and asset managers. We work exclusively with investment management firms, including asset allocators, asset managers, hedge funds, family offices, and RIAs, helping them modernize data infrastructure and build AI-ready foundations.
Our engagements combine senior strategy with hands-on implementation. We assess technical and business strategy, design the architecture, and build the data and AI infrastructure needed to support better investment decisions.
The Opportunity
We are looking for a senior, hands-on data engineering lead to help a prominent asset allocator client build a modern investment data platform. The firm has outgrown a collection of disconnected applications and spreadsheets and is building a unified data foundation across its investment, operations, and reporting functions.
This is a builder's role. The right person has deep technical expertise, writes and reviews production code, and holds a high bar for quality. They know what good data engineering looks like, and when work falls short of it they fix it and help the team raise its standards. You will lead technical work across a small, growing team and partner directly with the head of the function.
Design and build the warehouse and lakehouse, data models, orchestration, and semantic layers that the investment organization runs on.
Build production-grade Python, SQL, dbt, and orchestration work yourself, including batch and near-real-time pipelines.
Bring software engineering discipline to data: code review, testing, CI/CD, documentation, observability, and data quality controls.
Lead and mentor engineers through design reviews and pairing, set the technical direction for your area, and own outcomes end to end.
Work with investment, operations, finance, and reporting stakeholders to turn their needs into durable data products.
Use tools such as Claude Code, Codex, Cursor, and Copilot to move faster without compromising quality or controls.
Core Responsibilities
Architect and build core investment data domains such as security and entity reference data, positions and transactions, performance, risk, and private-markets fund data.
Design data models that are correct, reconcilable, and point-in-time aware, with tests and controls that catch problems before users do.
Own reliability, performance, and cost of the platform, including monitoring, alerting, and incident follow-through.
Review others' work closely, send it back when it isn't right, and make the next version better.
Evaluate tooling and vendors across Snowflake, dbt, Dagster/Airflow, and Azure, and make pragmatic build-versus-buy calls.
This role is intended for full-time placement at a prominent asset allocator client. The successful candidate will work closely with the client's engineering leadership and investment, operations, and technology stakeholders, and spend regular time in the office.
Compensation: Competitive total compensation commensurate with experience.
LAYIQ is an independent job-discovery service. This listing does not imply a partnership with or endorsement by the employer. Review the original posting for current details and availability.
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