ICT Data Engineer

Stellantis

Auburn Hills (MI)

On-site

USD 80,000 - 110,000

Full time

14 days+

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Job summary

Stellantis is seeking a Data Engineer in Auburn Hills, Michigan, to support Purchasing and Finance Analytics within the North America Data & AI team. This role involves ensuring the appropriate data is available for various consumers while optimizing data processing pipelines and ensuring quality and compliance.

The ideal candidate will have a Bachelor's degree in a related field and at least 3 years of experience in similar roles, along with strong skills in Python and SQL. The team values a diverse approach to problem-solving and aims to drive impactful analytics solutions.

Qualifications

  • Minimum 3 years’ experience as Data Scientist, Advanced Analyst, or similar role.
  • Strong proficiency in Python, SQL, PySpark.
  • Proven experience delivering end‑to‑end analytics or data science solutions.

Responsibilities

  • Assemble large, complex sets of data that meet business requirements.
  • Design and optimize end‑to‑end data pipelines.
  • Collaborate with stakeholders to support data infrastructure needs.

Skills

Python
SQL
PySpark
Power BI
Statistics
Machine Learning
Data Modeling

Education

Bachelor's or higher in Data Science, Statistics, Engineering, Computer Science, or related field

Tools

AWS
Azure
Palantir Foundry
Snowflake
Databricks

Job description

We are seeking a strategic and hands‑on Data Engineer to support Purchasing and Finance Analytics and Programs within our North America Data & AI team. Data engineering is the practice of making the appropriate data available to various data consumers (including data scientists, data and business analysts, citizen integrators, and line‑of‑business users). It is a discipline that involves collaboration across business and IT units.

In addition to creating and maintaining an optimal pipeline architecture, typical duties include:

Key Responsibilities
  • Assembling large, complex sets of data that meet non-functional and functional business requirements
  • Design, implement, and optimize end‑to‑end data pipelines for ingesting, processing, and transforming large volumes of structured and unstructured data.
  • Develop robust ETL (Extract, Transform, Load) process to integrate data from various sources.
  • Identifying, designing and implementing internal process improvements including re‑designing infrastructure for greater scalability, optimizing data delivery, and automating manual processes
  • Building required infrastructure for optimal extraction, transformation and loading of data from various data sources using AWS, Azure, DB2 and SQL technologies
  • Building scalable tables to provide actionable insight into key business performance metrics including operational efficiency and customer acquisition
  • Working with stakeholders including the Data Product teams to support their data infrastructure needs while assisting with data‑related technical issues
  • Design and maintain data models, schemas, and database structures to support analytical and operational use cases.
  • Optimize data storage and retrieval mechanisms for performance and scalability.
  • Lead and coordinate cross‑functional AI programs from concept to deployment, ensuring alignment with business goals and timelines.
  • Collaborate with other data scientists, engineers, and business stakeholders to define and prioritize program objectives.
  • Apply statistical analysis and machine learning techniques to solve business and operational problems.
  • Partner with business stakeholders to understand requirements and translate them into analytical solutions.
  • Translate business needs into actionable AI use cases and technical requirements
  • Build and deploy predictive models to forecast warranty claims, failure rates, and cost trends.
  • Ensure data quality, lineage, documentation, and compliance with governance requirements
  • Create dashboards and analytical outputs that drive insight adoption and operational impact
  • Collaborate with business data engineers, and platform teams on scalability, performance, and best practices
Basic Qualifications
  • Bachelor's or higher in Data Science, Statistics, Engineering, Computer Science, or related field.
  • Minimum 3 years’ experience as Data Scientist, Advanced Analyst, or similar role.
  • Strong proficiency in Python, SQL, PySpark and visualization tools (e.g., Power BI, Foundry Workshop).
  • Solid understanding of statistics, exploratory data analysis, and applied machine learning.
  • Experience working with large, complex datasets in enterprise environments.
  • Ability to communicate analytical findings clearly to technical and non‑technical audiences.
  • Proven experience delivering end‑to‑end analytics or data science solutions into production.
  • Experience with one or two data and cloud platforms (e.g., Palantir Foundry, Snowflake, Databricks, AWS, Azure, GCP).
  • Strong communication and stakeholder engagement skills.
Preferred Qualifications
  • Familiarity with data modeling, semantic layers, and enterprise data platforms.
  • Industry experience in automotive and manufacturing.
  • Exposure to MLOps concepts, model deployment, or monitoring.
  • Hands‑on experience with Palantir Foundry, Snowflake Intelligence.
  • Master's degree in Data Science, Statistics, Engineering, Computer Science, or related field.
  • This is a fast‑paced environment providing rapid delivery for our business partners. You will be working in a highly collaborative environment that values speed and quality, with a strong desire to drive change and value.

At Stellantis, we assess candidates based on qualifications, merit, and business needs. We welcome applications from all people without regard to sex, age, ethnicity, nationality, religion, sexual orientation, disability, or any characteristic protected by law. We believe that diverse teams reflect our identity as a global company, enabling us to better address the evolving needs of our customers and care for our future.

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