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Senior Data Architect you will be the primary owner of the data architecture for the Risk Management Back Office. You will leverage your deep expertise in modern cloud data platforms and financial risk management to design and build scalable secure and resilient data solutions on AWS and Snowflake.
The opportunity:
Hybrid: In office/remote
Architect & Design: Design build and maintain the end-to-end data architecture for the Risk Management Back Office leveraging AWS and Snowflake to support critical functions like trade settlement collateral management regulatory reporting and data reconciliation.
Data Modeling & Pipelines: Develop conceptual logical and physical data models for risk data domains. Lead the development of complex high-performance data ingestion and transformation pipelines using Python (including Snowpark) and AWS data services (e.g. Glue Lambda Kinesis).
Governance & Quality: Establish and champion a robust data governance framework. Define and enforce standards for data lineage metadata management and data quality. Implement monitoring and ing systems to ensure the highest levels of data integrity.
Business Intelligence & Analytics: Partner with risk analysts operations teams and leadership to understand their data needs. Architect data marts and semantic layers optimized for analytics and support the development of insightful dashboards and reports using Sigma Power BI and other BI tools.
Security & Compliance: Serve as a subject matter expert on data security within the data platform. Design and implement solutions for data classification access control and protection ensuring compliance with firm policies and financial regulations.
Technical Leadership: Provide technical guidance and mentorship to data engineers and analysts. Champion best practices in data architecture software engineering and cloud infrastructure. Drive innovation by evaluating and adopting new technologies and methodologies.
This position description identifies the responsibilities and tasks typically associated with the performance of the position. Other relevant essential functions may be required.
What you need:
Bachelors or Masters degree in Computer Science Engineering or a related quantitative field.
15 years of experience in data architecture data engineering or a similar role with a proven track record of designing and delivering large-scale data solutions.
Extensive hands-on experience with Snowflake including performance tuning security best practices and cost management.
Expert-level knowledge of the AWS ecosystem including S3 EC2 Lambda Glue IAM and networking fundamentals.
Advanced programming proficiency in Python for data manipulation pipeline development and automation.
Demonstrable experience architecting and delivering data solutions for BI and analytics with direct experience using tools like Sigma and/or Power BI.
Crucially extensive experience and deep domain knowledge of financial services back-office operations specifically within Risk Management (e.g. trade lifecycle settlement risk counterparty data collateral).
Expert-level understanding of data architecture patterns (e.g. Data Warehousing Data Lake Data Mesh) data modeling and data governance principles.
Must be based in or willing to relocate to the New York City metropolitan area.
Preferred Qualifications
Deep practical experience with data security principles and implementation including data encryption (at-rest in-transit) tokenization and managing Material Non-Public Information (MNPI).
Experience with data transformation tools like dbt (Data Build Tool).
Familiarity with infrastructure-as-code (IaC) tools such as Terraform or CloudFormation.
Knowledge of streaming data technologies (e.g. Kafka Kinesis).
Strong understanding of financial instruments across equities fixed income and derivatives.
Full-time