Full Stack Data Engineer
Listed on 2026-09-02
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IT/Tech
Data Engineering, Cloud Computing: Infrastructure & Operations
We are the movers of the world and the makers of the future. We get up every day, roll up our sleeves, and build a better world – together. At Ford, we're all a part of something bigger than ourselves. Are you ready to change the way the world moves?
Do you believe data is the engine driving the future of mobility? We do! Transforming how Ford manages, analyzes, and leverages financial data requires scalable data platforms, reliable cloud infrastructure, and high-quality analytical products that enable timely, data-driven decision-making. That’s where the Finance Data Hub makes an impact. We are modernizing how Ford manages financial data globally, delivering trusted and secure data products that support critical finance initiatives across the enterprise.
We are seeking a talented and driven Full Stack Data Engineer to join our product team. In this role, you will build scalable, high-performance data pipelines and cloud infrastructure that power financial reporting, analytics, and strategic decision-making. You should have a strong technical background and demonstrate experience in Google Cloud Platform (GCP), data warehousing, batch and streaming pipeline development, infrastructure automation, and modern software engineering practices.
Responsibilities include the end-to-end design, development, deployment, optimization, and production support of finance data products—from ingestion and transformation through governance, quality monitoring, and delivery. Working in an Agile, customer-centric environment and in close partnership with analytics stakeholders, product managers, and cross-functional engineers, you will deliver secure, reliable, cost-effective, and high-performing data solutions at enterprise scale.
- Pipeline Development & Ingestion: Design, build, and scale robust batch and streaming data pipelines on Google Cloud Platform (GCP) to process large volumes of finance data.
- Data Warehousing & Architecture: Develop exceptional analytical data products applying solid data warehouse principles, data modeling, and best practices.
- Infrastructure & Dev Ops: Maintain and enhance the platform's infrastructure using Terraform (Infrastructure as Code) and continuously develop, evaluate, and deploy code using CI/CD pipelines.
- Stakeholder
Collaboration:
Partner closely with data analytics stakeholders to streamline and optimize data acquisition, processing, and presentation workflows. - Data Governance & Quality: Implement and promote enterprise data governance models focusing on data protection, sharing, reuse, standards, quality monitoring, and data lineage documentation.
- Code Quality & Security: Write clean, reliable code using Test-Driven Development (TDD) in an agile environment, actively addressing security vulnerabilities and code quality issues using tools like Sonar Qube, Checkmarx, Fossa, and Cycode.
- Optimization & Cost Management: Continuously optimize existing data solutions (pipelines, infrastructure, and products) to ensure high performance, security reliability, low vulnerability, and cost efficiency.
- Production Support: Monitor production pipelines and provide timely production support to resolve issues in accordance with established SLAs.
- Continuous Improvement: Stay current on modern data engineering practices, contribute to the company's technical direction, and proactively build domain expertise in finance data.
- Design, build, and scale robust batch and streaming data pipelines on Google Cloud Platform (GCP) to process large volumes of finance data
We recognize that no one person will embody every single quality or skill listed below. If you are passionate about data engineering and have a strong foundation in cloud platforms, data architecture, and modern software engineering, we encourage you to apply.
Education- Bachelor’s degree or foreign equivalent in Computer Science, Information Technology, or a technology-related field.
- 3+ years of strong hands‑on experience building and deploying data solutions on Google Cloud Platform.
- Proven experience designing, developing, and maintaining batch and streaming data ingestion pipelines at scale.
- 2+ years of experience with continuous…
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