Senior Data Engineer

SteerBridge

Vienna (VA)

On-site

USD 120,000 - 190,000

Full time

7 days ago
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Job summary

SteerBridge Strategies is seeking a Senior Data Engineer to align data solutions with business requirements for AI/ML maintenance, sustainment, and deployment planning. You will manage data infrastructure, optimize data entry and extraction, and ensure data quality across multiple databases to support analytics and ML workflows.

The ideal candidate has 6+ years in data engineering, strong Python and SQL skills, and is comfortable working on-site in Vienna, VA with potential hybrid options. U.S.

Qualifications

  • Bachelor’s degree in a related field required.
  • Minimum 6+ years of data engineering experience.
  • U.S. citizenship and ability to obtain/maintain security clearance.
  • Strong experience with data pipelines and Python-based tooling.
  • Proficient in SQL and distributed computing frameworks.

Responsibilities

  • Perform Data Engineering tasks within existing systems of record and multiple databases.
  • Enhance and optimize data entry, management, and extraction for proprietary systems.
  • Conduct data quality checks, analysis, and documentation of processes.
  • Design scalable data models and data warehousing strategies.
  • Collaborate with data scientists, engineers, and stakeholders to enable ML workflows.

Skills

Data pipelines
Python development
Scripting
Automation
Distributed computing

Education

Bachelor’s Degree or above in Systems Engineering, Computer Science or related field

Tools

Python
Pandas
PySpark
NumPy
SciPy
SQL
Git
TensorFlow
PyTorch
Scikit-learn
Apache Kafka
Airflow
Spark
Flink
NiFi
AWS Glue
GCP Dataflow
Azure Data Factory
Delta Lake
Apache Iceberg
Apache Hudi
Hadoop
Hive
Presto/Trino/Athena

Job description

SteerBridge Strategies is a modern technology company delivering innovative, mission‑focused solutions to the U.S. Government and private sector. Leveraging deep expertise in federal acquisition, digital transformation, and emerging technologies, we deliver agile, commercial‑grade capabilities that accelerate operational effectiveness and drive measurable mission success.

At the core of SteerBridge is our people—especially the veterans whose leadership, problem‑solving mindset, and commitment to excellence elevate every project we support. We don’t simply hire exceptional talent; we cultivate it, creating meaningful career pathways for veterans, military spouses, and professionals who share our passion for advancing technology and strengthening the missions we serve.

SteerBridge seeks a highly skilled and motivated individual to join our team as a Senior Data Engineer to align data solutions to business requirements by planning and managing data infrastructure and strategy for our AI/ML Maintenance, Sustainment, and Deployment Planning Project. Our team is dedicated to harnessing the power of AI/ML to increase parts availability and reduce maintenance wait times, ultimately maximizing aircraft availability.

In this role, you will be responsible performing Data Engineering tasks within the existing systems of record with multiple databases. Your mission will be to enhance and optimize data entry, management and extraction within this database to ensure its usability within our proprietary system. Data management activities include performing data quality checks, analysis, presenting data and documenting the process. The ideal candidate is a quick learner, curious, innovative, results-oriented and has strong interpersonal skills

  • Must be a U.S. Citizen.
  • Bachelor’s Degree or Above in Systems Engineering, Computer Science or related field.
  • An active security clearance or the ability to obtain one is required.
  • Minimum 6+ years of experience to include:
  • Experience in data pipelines, utilizing advanced analytics tools and platforms and Python.
  • Experience in scripting, tooling, and automating large-scale computing environments.
  • Extensive experience with major tools such as Python, Pandas, PySpark, NumPy, SciPy, SQL, and Git; Minor experience with TensorFlow, PyTorch, and Scikit-learn.
  • Location: Preferred local to the Vienna, Va area and able to work on-site at our Vienna, VA office (3 or more days/week). Hybrid opportunities at supervisors' discretion.

Data Modeling and Design

  • Advanced data modeling (conceptual, logical, and physical) with emphasis on scalability and maintainability.
  • Strong understanding of database paradigms (relational, NoSQL, graph, time-series, and document-based).
  • Expertise with modern data warehousing platforms (Redshift, Snowflake, BigQuery).
  • Deep understanding of dimensional modeling (star/snowflake schemas) and data vault techniques.
  • Experience designing for both OLTP and OLAP workloads.
  • Proficiency with schema evolution, metadata-driven pipelines, and data versioning strategies.
  • Implementing data retention, archival, and lifecycle policies.
  • Project Experience:
  • Delivered optimized, production-grade data models supporting analytics, reporting, and ML workflows, aligning with established architecture and performance standards.
  • Hands-on experience with distributed processing tools (Apache Kafka, Airflow, Spark, Flink, NiFi).
  • Skilled in building and orchestrating batch and real-time pipelines on cloud platforms (AWS Glue, GCP Dataflow, Azure Data Factory).
  • Deep understanding of incremental processing, idempotency, schema evolution, and backfill logic.
  • Proficient in pipeline automation, observability, and monitoring (metrics, logging, alerting).
  • Strong Python development for ETL — modular, testable, reusable, and performance-optimized.
  • Knowledge of workflow dependency management, retries, and failure recovery strategies.
  • Project Experience:
  • Owned the end-to-end design and implementation of fault-tolerant, high-throughput pipelines integrating diverse data sources while maintaining data quality and SLAs.

Cloud Platforms and Services

  • Deep expertise in AWS, GCP, or Azure data ecosystems.
  • Experience building and managing cloud-native data solutions (Data Lakes, Data Warehouses, Data Mesh).
  • Strong understanding of cloud storage (S3, Blob), managed databases (RDS, DynamoDB), and compute (EMR, Dataproc, ECS).
  • Cost governance and performance optimization for large-scale data workloads.
  • Knowledge of serverless data patterns (AWS Lambda + Athena, GCF + BigQuery).
  • Experience with hybrid/multi-cloud architecture and inter-cloud data movement.
  • Project Experience:
  • Led migration of legacy ETL workflows and data systems to cloud-native architectures, delivering measurable cost, scalability, and performance improvements.
  • Hands-on experience with distributed computing frameworks (Hadoop, Spark, Hive, Presto).
  • Proficiency with data lake and lakehouse architectures (Delta Lake, Apache Iceberg, Apache Hudi).
  • Understanding of partitioning, data compaction, schema evolution, and ACID compliance.
  • Strong knowledge of query optimization on massive datasets (Athena, Trino, Presto).
  • Project Experience:
  • Built and maintained data platforms capable of processing structured and unstructured data at scale, enabling advanced analytics and data science workloads.

Database Administration and Optimization

  • Advanced SQL/NoSQL query tuning, indexing, sharding, and partitioning strategies.
  • Proficient with replication, backups, and disaster recovery across distributed systems.
  • Skilled in analyzing query execution plans and applying cost-based optimization.
  • Experience optimizing data-intensive application code and database interfaces.
  • Familiarity with temporal tables, data versioning, and caching strategies.
  • Project Experience:
  • Improved query performance and system scalability through advanced indexing, schema refactoring, and distributed database optimization.

Data Governance and Security

  • Implementing data privacy and compliance frameworks (GDPR, CCPA).
  • Experience with data cataloging, lineage, and metadata management (DataHub, Collibra, Alation).
  • Role-based access control and sensitive data protection across multi-tenant systems.
  • Integration of data quality validation and data contract testing within CI/CD pipelines.
  • Automation of governance and security policies using cloud-native tools.
  • Project Experience:
  • Implemented enterprise-grade data governance and access control frameworks ensuring compliance, lineage visibility, and trust in analytics.

Programming and Software Engineering

  • Strong proficiency in Python and SQL for data processing, automation, and API integration.
  • Expertise in object-oriented programming (OOP) and design patterns in Python.
  • Deep understanding of algorithmic complexity (Big O) and code performance optimization.
  • Familiarity with parallel and distributed computing frameworks (Spark, Dask, Ray).
  • Skilled with version control (Git) and CI/CD tools (GitLab, Jenkins, CircleCI).
  • Proficient in software engineering best practices: testing (pytest/unittest), documentation, type hinting, and linting.
  • Ability to debug, profile, and optimize large-scale data workflows.
  • Project Experience:
  • Developed performant, maintainable Python-based data frameworks, automated ETL systems, and optimized code for distributed workloads.
  • Collaboration with data scientists on feature engineering, data preparation, and model deployment.
  • Knowledge of ML orchestration and experiment tracking (MLflow, Kubeflow).
  • Familiarity with feature stores and data lineage for ML.
  • Integration of batch and streaming data pipelines for real-time inference.
  • Hands-on experience with analytics and visualization tools (Tableau, Power BI).
  • Project Experience:
  • Built and maintained ML-ready data pipelines and infrastructure supporting training, experimentation, and real-time inference.

Leadership and Collaboration

  • Mentoring and guiding junior engineers in data design, coding standards, and performance optimization.
  • Leading cross-functional projects with data scientists, analysts, and business partners.
  • Promoting best practices for data engineering and governance within the organization.
  • Effective stakeholder communication, documentation, and Agile project management.
  • Ability to conduct technical reviews and enforce design and scalability standards.
  • Project Experience:
  • · Provided technical leadership for cross-domain data initiatives, fostering best practices in data engineering and enabling scalable, maintainable systems.

Additional Skills

  • DevOps/DataOps: Infrastructure as code, Docker/Kubernetes, automated deployment of data infrastructure.
  • Testing & CI/CD: Git-based workflows, automated integration testing, and continuous delivery for data pipelines.
  • Performance & Cost Optimization: Tuning query execution, pipeline efficiency, and resource utilization.
  • Automation: Building self-healing data pipelines with retry logic, monitoring, and alerting.
  • Documentation: Strong communication of technical architecture using tools like Lucidchart, PlantUML, or Draw.io.
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