Ontology Engineer

Stellantis

Auburn (AL)

On-site

USD 100,000 - 130,000

Full time

14 days+

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Job summary

Stellantis in Auburn, Alabama is looking for an Ontology Engineer to develop and maintain backend data solutions for global purchasing analytics. The ideal candidate will have a Bachelor's degree and over 8 years of data engineering experience, particularly with SQL and modern data platforms.

This role involves building scalable data models, collaborating with analysts, and leveraging AI-driven tooling. Successful candidates will thrive in a complex, entrepreneurial data environment.

Qualifications

  • 8+ years of experience in data engineering or related experience.
  • Strong SQL coding skills.
  • Ability to work independently in ambiguous scenarios.

Responsibilities

  • Develop, optimize, and maintain SQL/PySpark-based data models.
  • Collaborate with data analysts to translate requirements into backend solutions.
  • Implement data validation, transformation, and automation logic.

Skills

SQL coding skills
Data modeling concepts
Backend engineering
Independent self-learning
Collaboration skills

Education

Bachelor of Science degree in relevant field

Tools

Snowflake
Palantir Foundry
Databricks
Power BI
TypeScript

Job description

The Global Purchasing Business Analytics Team at Stellantis is seeking a Ontology Engineer to build and maintain robust backend data solutions in support of global purchasing analytics. This role is focused on designing scalable data models and developing high-quality, production-grade code in SQL and Python to support our enterprise analytics architecture. You will work across platforms such as Snowflake, Palantir Foundry, Power BI, and potentially Databricks, helping the team evolve toward advanced capabilities, including AI-enhanced insights. While you'll collaborate closely with analysts and business stakeholders, this is a data engineering position - not a dashboard/reporting development role. As Stellantis operates globally with diverse and region-specific systems, you will often need to integrate fragmented data sources and iteratively develop solutions without complete documentation or available SMEs. Success in this role requires initiative, curiosity, and a self-starting mindset - someone who can function as a data entrepreneur: discovering and connecting data across domains to drive business value in a complex enterprise environment. You will work on a globally distributed team. Working hours must include at least 4 hours of overlap with Eastern Standard Time (EST) to ensure strong collaboration.

Key Responsibilities
  • Develop, optimize, and maintain SQL /PySpark-based data models to support analytical applications in Global Purchasing
  • Partner with data analysts to understand analytical requirements and translate them into well-structured backend data solutions
  • Implement data validation, transformation, and automation logic to ensure high data quality
    Write clean, efficient, and maintainable code using SQL, Python/PySpark, and TypeScript (where applicable)
  • Explore and connect new or unfamiliar datasets in an iterative and self-directed manner, especially where formal documentation or SMEs are unavailable.
  • Collaborate with cross-functional teams to connect complex data into usable data models.
  • Contribute to the adoption of AI-driven tooling and workflows where applicable
Basic Qualifications
  • Bachelor of Science degree in Business, Business Administration, Supply Chain Management, Finance, Marketing, Economics, International Business, Accounting, Entrepreneurship, Engineering, or equivalent; Other technical degrees with business background also considered
  • 8 + years of experience in data engineering or related experience
  • Strong SQL coding skills
  • Familiarity with modern data platforms (e.g., Snowflake, Palantir Foundry, Databricks, etc.)
  • Experience with data modeling concepts, star/snowflake schemas, and analytics-ready data design
  • Ability to write clean, maintainable code and troubleshoot performance issues in large datasets
  • Comfortable working in a backend engineering role, supporting front-end dashboards without directly building reports.
  • Solid understanding of data pipelines, ETL/ELT workflows, and version control (e.g., Git)Strong self-learning skills and ability to work independently in ambiguous, data-discovery-driven scenarios.
Preferred Qualifications
  • Proficiency in Python
  • Experience with TypeScript, especially in the context of Palantir or similar platforms
  • Familiarity with Power BI, but focused on backend data support rather than report creation
  • Exposure to AI/ML workflows or interest in supporting such projects
  • Experience working in Agile and/or cross-functional teams
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