Join a high-performance engineering team as a remote Data Engineer to design, implement, and operate resilient data pipelines and platform components.
Key Highlights
Technical Skills Required
Benefits & Perks
Job Description
Industry & Sector: Financial services — investment risk analytics, portfolio engineering, and enterprise data platforms. We build scalable data infrastructure and analytics pipelines that power risk signals, regulatory reporting, and client-facing analytics for institutional customers.
Primary Title: Data Engineer (Remote, United States)
About The Opportunity
We are recruiting a remote Data Engineer to join a high-performance engineering team focused on operationalizing large-scale ETL/ELT and streaming data solutions. You will design, implement, and operate resilient data pipelines and platform components that deliver timely, accurate analytics for trading, risk, and reporting use-cases.
Role & Responsibilities
- Design, build, and maintain scalable batch and streaming data pipelines to ingest, transform, and deliver high-quality datasets for analytics and ML.
- Author and optimize reusable ETL/ELT workflows using managed orchestration (e.g., Airflow) and Spark-based compute for performance and cost-efficiency.
- Implement and maintain cloud data platform components (data warehouses, storage, access controls) to support ad-hoc analytics and production reporting.
- Collaborate with data scientists, analysts, and SREs to define data schemas, validation rules, monitoring, and SLAs for production datasets.
- Drive data engineering best practices: modular code, CI/CD pipelines, automated testing, observability, and infrastructure-as-code.
- Troubleshoot production incidents, perform root-cause analysis, and implement long-term reliability improvements.
Must-Have
- Python
- SQL
- Apache Spark
- Apache Airflow
- Snowflake
- AWS
- dbt
- Apache Kafka
- Terraform
Benefits & Culture Highlights
- Fully remote, US-based role with flexible work policies and distributed engineering teams.
- Focus on professional growth: technical mentorship, learning budget, and opportunities to influence platform design.
- High-impact environment where engineering ownership and data quality drive business outcomes.
Skills: python,apache spark,snowflake,sql,aws,terraform,dbt,apache kafka
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