Staff Engineer, Ford Pro Intelligence
Ford Motor CompanyAbout the role
In this role...
We are looking for a visionary Staff Engineer to serve as the technical North Star for our data and AI-driven platforms. In this role, you will be responsible for the evolution of our core architecture, moving us toward a future where real-time data processing and AI are seamlessly integrated into every facet of our product.
As our data ecosystem grows in complexity, we need a leader who can navigate the intersection of high-performance backend engineering and modern AI capabilities. You will tackle "unsolved" problems—designing systems that handle petabytes of data with millisecond latency, architecting multi-tenant API ecosystems, and building the infrastructure that delights our customers who are leveraging our AI solutions for their everyday work. You are a "leader of leaders," someone who influences our multi-year technical roadmap and ensures that our engineering standards remain world-class while we innovate at speed on the Google Cloud Platform (GCP).
Core Technical Skills
- Languages: Expert-level proficiency in Java and Python. Strong experience with Kotlin for modern backend services.
- Cloud Platform: Deep experience with GCP (Google Cloud Platform), specifically BigQuery, Dataflow, Vertex AI, GKE (Google Kubernetes Engine), and IAM.
- Data Engineering: Mastery of SQL and data modeling. Proven track record of building real-time processing systems at scale and robust batch ETL/ELT pipelines.
- AI Engineering: Practical experience deploying AI/ML models in production, prompt engineering, fine-tuning, and working with vector databases (e.g., Pinecone, Weaviate, or Vertex AI Search).
- System Design: Expert knowledge of distributed systems, CAP theorem, microservices patterns, and event-driven architecture.
Leadership & Soft Skills
- Strategic Thinking: Ability to look 12–24 months ahead and identify technical debt or opportunities for innovation.
- Communication: Ability to explain complex technical concepts to non-technical stakeholders and executives.
- Execution: A "get it done" attitude with the ability to navigate ambiguity and drive projects to completion in a fast-paced environment.
What you'll do...
- Architectural Leadership: Design and oversee the implementation of highly scalable, distributed backend systems and microservices using Java, Kotlin, and Python.
- Data Strategy: Define the data architecture and modeling standards for both relational (SQL) and non-relational systems, ensuring data integrity, security, and high availability.
- Streaming & Batch Processing: Lead the design of real-time data pipelines (e.g., using Dataflow, Pub/Sub, or Kafka) and batch processing frameworks to handle petabyte-scale data efficiently.
- AI Integration: Drive the "AI-first" engineering culture by integrating LLMs, machine learning models, and RAG (Retrieval-Augmented Generation) patterns into production workflows using GCP Vertex AI.
- Cloud Excellence: Optimize GCP infrastructure for performance and cost, leveraging GKE, BigQuery, and Cloud Spanner to support global-scale operations.
- API & Ecosystem Design: Set the standard for API development (REST, GraphQL, gRPC), ensuring seamless integration across internal services and external partners.
- Technical Governance: Conduct architecture reviews, define CI/CD best practices, and ensure the team maintains a high bar for code quality, testing, and observability.
- Mentorship: Act as a force multiplier by mentoring Senior Engineers, fostering a culture of continuous learning and technical excellence.
You'll Have...
• Bachelor’s Degree in Computer Science, Data Science, or a related field
• 10+ years of professional software engineering experience, with at least 5 years using Python and SQL
• 5 years experience building and consuming APIs to drive complex data integrations across distributed systems.
• 5 years experience migrating or building large-scale architectures on GCP.
• 4+ years in a Senior or Staff capacity, overseeing large-scale distributed systems.
• 2+ years Practical experience using LLM APIs or building GenAI-enabled applications
• Experience in a "Product-led" engineering environment where you have directly influenced product features through technical capability.
Even better, you may have...
Contributions to Open Source projects or a recognized presence in the tech community (talks, blogs, etc.).
Experience with MLOps framework
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