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Über
This opportunity is 100% remote.
The ideal candidate has hands-on experience with ETL/ELT pipelines, XBRL data processing, Apache Iceberg-based architectures, and advanced data optimization techniques such as materialized views and context-aware data engineering. This role also requires proficiency in AI tools and AI-assisted development workflows, along with experience building and deploying CI/CD pipelines for data and analytics platforms.
Key Responsibilities Data Pipeline Development & ETL/ELT
Design, develop, and maintain robust ETL/ELT pipelines to ingest, transform, and deliver data across enterprise platforms. Build scalable data ingestion frameworks for structured and semi-structured data, including XBRL filings and financial datasets. Implement data transformation logic to support analytics, reporting, and regulatory use cases. Ensure data pipelines are reliable, performant, and scalable in cloud environments. Leverage AI-assisted development tools to accelerate pipeline development, testing, and optimization. Cloud Data Platforms & Iceberg Architecture
Develop and manage data solutions leveraging AWS services (e.g., S3, Airflow, DAGs, Glue, Lambda, Redshift). Implement and optimize Apache Iceberg table formats for large-scale, ACID-compliant data lakes. Support lakehouse architectures that unify data lakes and data warehouses. Optimize data storage and retrieval strategies for performance and cost efficiency. Enable data platforms that support AI/ML workloads and downstream generative AI use cases. CI/CD & DataOps Engineering
Design and implement CI/CD pipelines for data pipelines, infrastructure, and analytics code using tools such as GitHub Actions, GitLab CI, Jenkins, or AWS-native services. Automate build, test, and deployment processes for ETL pipelines and data platform components. Implement DataOps best practices, including version control, automated testing, environment promotion, and rollback strategies. Ensure reproducibility, reliability, and governance of data pipeline deployments across environments. Integrate AI-driven testing and monitoring tools to improve pipeline quality and reduce operational risk. Data Optimization & Performance Engineering
Design and implement materialized views and other performance optimization techniques to improve query efficiency. Tune data pipelines and queries for performance, scalability, and cost. Implement partitioning, indexing, and caching strategies aligned to workload patterns. XBRL & Financial Data Processing
Develop pipelines to ingest, parse, and normalize XBRL (eXtensible Business Reporting Language) data. Support regulatory and financial data use cases requiring high accuracy and traceability. Ensure alignment with data standards and validation rules for financial reporting datasets. Context Engineering & Data Modeling Support
Apply context engineering principles to ensure data is enriched with meaningful metadata, lineage, and business context. Collaborate with Data Architects to support data modeling, schema design, and entity relationships. Enable downstream analytics and AI use cases by structuring data for usability, discoverability, and governance. Metadata, Data Catalog, and Governance Integration
Integrate pipelines with enterprise data catalogs and metadata management systems. Support automated metadata capture, lineage tracking, and data quality monitoring. Ensure alignment with data governance frameworks and standards established by OCDO organizations, including AI data readiness and traceability. Stakeholder Collaboration & Agile Delivery
Collaborate with data architects, analysts, and business stakeholders to understand data needs and deliver solutions. Participate in stakeholder listening campaigns, workshops, and data discovery efforts. Work in Agile teams to iteratively deliver data capabilities and enhancements. Contribute to identifying and implementing AI-driven efficiencies and automation opportunities across the data lifecycle. Required Qualifications
Bachelor’s degree in Computer Science, Engineering, Data Science, or related field. 5+ years of experience in data engineering, ETL development, or data platform engineering. Strong hands-on experience with:
ETL/ELT tools and frameworks AWS data services (S3, Glue, Lambda, Redshift, etc.) Apache Iceberg and modern data lake architectures
Experience designing and implementing CI/CD pipelines for data platforms and ETL workflows. Demonstrated proficiency using AI tools and AI-assisted development workflows (e.g., LLM copilots, automated code generation, pipeline optimization tools). Experience processing XBRL or complex financial/regulatory datasets. Proficiency in SQL and Python. Experience implementing materialized views and query optimization techniques. Understanding of data modeling concepts and metadata management. Familiarity with data governance, data quality practices, and data readiness for AI/ML use cases. Ability to work in Agile, DevOps-oriented environments. U.S. Citizenship required; ability to obtain and maintain a federal clearance. Preferred Qualifications
Experience supporting federal agencies such as SEC, DHS, Treasury, or Federal Reserve System. Familiarity with data catalog tools (e.g., Collibra, Alation, ServiceNow). Experience with Apache Spark, Kafka, or other distributed data processing frameworks. Experience enabling data pipelines for AI/ML or generative AI applications. Knowledge of data maturity frameworks (e.g., EDM DCAM, TDWI). Exposure to context engineering or semantic data layer design. AWS or data engineering certifications. Experience with infrastructure-as-code (IaC) tools (e.g., Terraform, CloudFormation) in support of CI/CD pipelines.
Sprachkenntnisse
- English
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