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ICT Data Engineer

Stellantis
Posted 3 months ago, valid for 12 days
Location

Auburn Hills, MI 48321, US

Salary

Competitive

Contract type

Full Time

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Sonic Summary

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  • We are looking for a Data Engineer to support Purchasing and Finance Analytics within our North America Data & AI team.
  • The ideal candidate should have a minimum of 3 years of experience in a similar role, with strong proficiency in Python, SQL, and visualization tools.
  • Responsibilities include designing and optimizing data pipelines, developing ETL processes, and collaborating with stakeholders to support data infrastructure needs.
  • The position requires a Bachelor's degree in a related field, and familiarity with data modeling and cloud platforms is preferred.
  • The salary for this role is competitive and commensurate with experience.

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 and responsibilities for a Data Engineer position may include: 

 

The ideal candidate combines strong analytical skills with practical experience building scalable analytics, models, and data products in enterprise environments. You will be part of a talented team of data scientists, engineers, driving predictive analytics and early detection of emerging warranty trends using vast datasets across the enterprise. 

 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. 
  • Identifyingdesigning 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 
Qualifications

Basic Qualifications

  • Bachelor’s or 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 nontechnical audiences. 
  • Proven experience delivering endtoend 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. 



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