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Non Exempt Databricks Data Engineer Jobs in Aurora, IL

Senior Data Engineer

Chicago, IL · On-site

$148K - $164K/yr

Build E2E Azure Databricks-based data solutions. Design, develop, and maintain scalable ETL and ... Bachelor's degree in Computer Science, Engineering, Data Science, or a related field A minimum of 5 ...

The Senior Data Engineer is responsible for supporting, planning and coordinating functional and ... Optimize SQL, Spark, BigQuery, and Databricks workloads for performance, reliability, scalability ...

Sr Data Engineer (Remote)

Bolingbrook, IL · On-site +1

$102K - $140K/yr

The Senior Data Engineer is responsible for supporting, planning and coordinating functional and ... Optimize SQL, Spark, BigQuery, and Databricks workloads for performance, reliability, scalability ...

The Senior Data Engineer is responsible for supporting, planning and coordinating functional and ... Optimize SQL, Spark, BigQuery, and Databricks workloads for performance, reliability, scalability ...

Data Engineer

Chicago, IL · On-site

$118K - $141K/yr

Together. Summary The Data Engineer, Solutions & Data role designs, builds, and operates data ... Data pipeline tooling and cloud data services experience (Azure Data Factory, Azure Databricks ...

Lead Data Engineer

Chicago, IL · On-site

$118K - $141K/yr

Lead Data Engineer Do you love building and pioneering in the technology space? Do you enjoy ... Eligibility varies based on full or part-time status, exempt or non-exempt status, and management ...

Data Engineer

Chicago, IL · Remote

$117K - $140K/yr

Strong hands-on experience with Databricks (Spark, Delta Lake, Unity Catalog) and AWS (S3, IAM ... Experience with CI/CD, DevOps, and modern data architecture (lakehouse, medallion, etc.). Strong ...

Lead Data Engineer

Chicago, IL · On-site

$118K - $141K/yr

Lead Data Engineer Do you love building and pioneering in the technology space? Do you enjoy ... Eligibility varies based on full or part-time status, exempt or non-exempt status, and management ...

Data Engineer

Chicago, IL · On-site

$118K - $141K/yr

We are seeking a dedicated and experienced Data Engineer to join our Chicago team. The ideal ... HDFS, Databricks, Iceberg, etc) * Experience with Apache Spark, Apache Flink or similar tools

Lead Data Engineer

Chicago, IL · On-site

$118K - $141K/yr

Lead Data Engineer Do you love building and pioneering in the technology space? Do you enjoy ... Eligibility varies based on full or part-time status, exempt or non-exempt status, and management ...

Lead Data Engineer

Chicago, IL · On-site

$118K - $141K/yr

Lead Data Engineer EPTech's Enterprise Consumer Products team transforms customer experiences, and ... Eligibility varies based on full or part-time status, exempt or non-exempt status, and management ...

Data Engineer

Chicago, IL · On-site

$46.07 - $68.64/hr

The Data Engineer is responsible for designing and implementing data pipelines for cloud projects ... Databricks. • Proficient in RDBMS such as Oracle, SQL Server, DB2, MySQL etc. • Strong ...

Databricks Engineer

Chicago, IL · On-site

$118K - $141K/yr

Key Responsibilities Data Engineering & Pipeline DevelopmentDesign, develop, and maintain end-to-end data pipelines in Databricks using Spark and Delta Lake Build and optimize ELT/ETL processes for ...

Lead Data Engineer

Chicago, IL · On-site +1

$140K - $180K/yr

... non-technical terms. Ensure solutions align with firm strategy and operational priorities ... Advanced experience with Azure data services (ADLS, Databricks, Azure Data Factory, Synapse)

Lead Data Engineer

Chicago, IL · On-site

$118K - $141K/yr

Lead Data Engineer Do you love building and pioneering in the technology space? Do you enjoy ... Eligibility varies based on full or part-time status, exempt or non-exempt status, and management ...

Lead Data Engineer

Chicago, IL

$118K - $141K/yr

Lead Data Engineer Do you love building and pioneering in the technology space? Do you enjoy ... Eligibility varies based on full or part-time status, exempt or non-exempt status, and management ...

Lead Data Engineer

Chicago, IL · On-site

$75 - $85/hr

The engineer will partner across Product, Data Science, Security, Privacy, and Platform Engineering ... Distributed data processing and lakehouse architectures such as Databricks, Delta Lake, or Apache ...

Principal Data Engineer (New York)

Chicago, IL · On-site

$118K - $141K/yr

... Snowflake, Databricks, and AWS. * Design and implement data solutions using PostgreSQL for ... non-technical stakeholders and drive initiatives in complex environments. * You have working ...

Showing results 41-60

Non Exempt Databricks Data Engineer information

See Aurora, IL salary details

$44.1K

$128.6K

$176K

How much do non exempt databricks data engineer jobs pay per year?

As of Aug 22, 2026, the average yearly pay for non exempt databricks data engineer in Aurora, IL is $128,605.00, according to ZipRecruiter salary data. Most workers in this role earn between $113,500.00 and $136,300.00 per year, depending on experience, location, and employer.

What is the difference between Non Exempt Databricks Data Engineer vs Non Exempt Data Analyst?

AspectNon Exempt Databricks Data EngineerNon Exempt Data Analyst
CertificationsDatabricks certifications, SQL, cloud platform skillsExcel, SQL, data visualization tools
Work EnvironmentCloud-based data platforms, big data environmentsBusiness intelligence tools, spreadsheets, reports
Employer & IndustryTech, finance, healthcare using big data solutionsMarketing, retail, finance analyzing data trends

Non Exempt Databricks Data Engineers focus on building and maintaining data pipelines using Databricks and cloud platforms, often working with big data. Non Exempt Data Analysts interpret data to generate reports and insights. While both roles require SQL skills, Data Engineers need cloud and big data expertise, whereas Data Analysts focus on data visualization and reporting.

What job categories do people searching Non Exempt Databricks Data Engineer jobs in Aurora, IL look for?

The top searched job categories for Non Exempt Databricks Data Engineer jobs in Aurora, IL are:

What cities near Aurora, IL are hiring for Non Exempt Databricks Data Engineer jobs?

Cities near Aurora, IL with the most Non Exempt Databricks Data Engineer job openings:

Senior Data Engineer

Randstad Digital

Chicago, IL • On-site

$148K - $164K/yr

Other

This job post has expired today. Applications are no longer accepted.


Job description

job summary:

The Senior Data Engineer will design, build, and maintain the scalable data pipelines, models, and infrastructure that power analytics, business intelligence, and machine learning products across the company. Partnering closely with business, product, and analytics teams, you will translate complex requirements into elegant, reliable data solutions and help drive the delivery of innovative data products. This role reports to the Senior Manager, Data Engineering.


Build E2E Azure Databricks-based data solutions.


Design, develop, and maintain scalable ETL and streaming data pipelines on Azure Databricks, leveraging Apache Spark, Delta Lake, and Azure Data Lake Storage (ADLS Gen2) to enable reliable lakehouse architectures and ensure efficient ingestion, transformation, and storage of data


Build and optimize data models and schemas for analytics, reporting, and operational data stores


Build and optimize Delta Lake / Lakehouse patterns (Bronze/Silver/Gold), including schema evolution and time travel


Develop high-quality PySpark / Spark SQL transformations, optimize joins, partitioning, caching, and shuffle behavior.


Implement and maintain data quality frameworks, including data validation, monitoring, and alerting mechanisms.


Collaborate closely with data architects, analysts, data scientists, and product teams to align data engineering activities with business goals.


Leverage cloud data platforms (Azure, AWS or Google Cloud Platform) to build and optimize data storage solutions, including data warehouses, data lakehouses, and real-time data processing.


Develop automation processes and frameworks for CI/CD supported by version control, linting, automated testing, security scanning, and monitoring


Contribute to the maintenance and improvement of data governance practices, helping to ensure data integrity, accessibility, and compliance with regulations such as GDPR.


Provide technical mentorship and guidance to junior team members, promoting best practices in software engineering, data engineering, and agile development.


Troubleshoot and resolve complex Azure Databricks platform data infrastructure and pipeline issues, ensuring minimal downtime and optimal performance.


Education and/or Experience:


Required:


Bachelor's degree in Computer Science, Engineering, Data Science, or a related field


A minimum of 5 years of hands-on experience in data engineering, designing and building scalable data pipelines, ETL/ELT processes


A minimum of 5 years of hands-on experience designing, building, and operating data solutions


Extensive experience with cloud data platforms in Azure, AWS, or Google


Strong proficiency with Python, SQL, and Apache Spark for data processing


Proven experience building reusable, metadata-driven data ingestion frameworks using Python and Scala


Hands-on experience with modern data-platform components (object storage, Lakehouse engines, orchestration tools, columnar warehouses, streaming services).


Proven experience with data modeling, schema design, and performance tuning of large-scale data systems.


Deep understanding of data engineering best practices: code repositories, CI/CD pipelines, test automation, monitoring, and alerting systems.


Skilled at crafting compelling data narratives through tables, reports, dashboards, and other visualization tools


Strong problem-solving and analytical skills with excellent attention to detail.


Excellent communication skills and experience collaborating with technical and business stakeholders.


Preferred:


Master's degree in Computer Science, Engineering


Experience building data pipelines in an Azure Databricks environment


Knowledge of Databricks architecture and core components, including Databricks Lakehouse, Delta Lake, Databricks SQL, Apache Spark clusters, Unity Catalog, Databricks Workflows (Jobs), and Databricks Notebooks


Hands-on experience integrating Azure Databricks with Azure DevOps, Azure Blob Storage / ADLS Gen2, Azure Key Vault, and Azure Data Factory


Familiarity with enterprise data modeling tools such as ERwin Data Modeler, including the ability to interpret and apply logical and physical data models to analytical and lakehouse architectures


Experience migrating to-or building-data platforms from the ground up


Experience with Infrastructure as Code (IAC) and Governance as Code


Familiarity with machine-learning workloads and partnering on feature engineering


Experience working in an Agile delivery model


Other Skills and Abilities:


The following will also be required of the successful candidate:


Strong organizational skills


Strong attention to detail


Good judgment


Strong interpersonal communication skills


Strong analytical and problem-solving skills


Able to work harmoniously and effectively with others


Able to preserve confidentiality and exercise discretion


Able to work under pressure


Able to manage multiple projects with competing deadlines and priorities


location: 1 S Dearborn, Illinois
job type: Permanent
salary: $148,000 - 164,000 per year
work hours: 9am to 4pm
education: Bachelors
responsibilities:

The Senior Data Engineer will design, build, and maintain the scalable data pipelines, models, and infrastructure that power analytics, business intelligence, and machine learning products across the company. Partnering closely with business, product, and analytics teams, you will translate complex requirements into elegant, reliable data solutions and help drive the delivery of innovative data products. This role reports to the Senior Manager, Data Engineering.



  • Build E2E Azure Databricks-based data solutions.

  • Design, develop, and maintain scalable ETL and streaming data pipelines on Azure Databricks, leveraging Apache Spark, Delta Lake, and Azure Data Lake Storage (ADLS Gen2) to enable reliable lakehouse architectures and ensure efficient ingestion, transformation, and storage of data

  • Build and optimize data models and schemas for analytics, reporting, and operational data stores

  • Build and optimize Delta Lake / Lakehouse patterns (Bronze/Silver/Gold), including schema evolution and time travel

  • Develop high-quality PySpark / Spark SQL transformations, optimize joins, partitioning, caching, and shuffle behavior.

  • Implement and maintain data quality frameworks, including data validation, monitoring, and alerting mechanisms.

  • Collaborate closely with data architects, analysts, data scientists, and product teams to align data engineering activities with business goals.

  • Leverage cloud data platforms (Azure, AWS or Google Cloud Platform) to build and optimize data storage solutions, including data warehouses, data lakehouses, and real-time data processing.

  • Develop automation processes and frameworks for CI/CD supported by version control, linting, automated testing, security scanning, and monitoring

  • Contribute to the maintenance and improvement of data governance practices, helping to ensure data integrity, accessibility, and compliance with regulations such as GDPR.

  • Provide technical mentorship and guidance to junior team members, promoting best practices in software engineering, data engineering, and agile development.

  • Troubleshoot and resolve complex Azure Databricks platform data infrastructure and pipeline issues, ensuring minimal downtime and optimal performance.


qualifications:

Education and/or Experience:


Required:


Bachelor's degree in Computer Science, Engineering, Data Science, or a related field


A minimum of 5 years of hands-on experience in data engineering, designing and building scalable data pipelines, ETL/ELT processes


A minimum of 5 years of hands-on experience designing, building, and operating data solutions


Extensive experience with cloud data platforms in Azure, AWS, or Google


Strong proficiency with Python, SQL, and Apache Spark for data processing


Proven experience building reusable, metadata-driven data ingestion frameworks using Python and Scala


Hands-on experience with modern data-platform components (object storage, Lakehouse engines, orchestration tools, columnar warehouses, streaming services).


Proven experience with data modeling, schema design, and performance tuning of large-scale data systems.


Deep understanding of data engineering best practices: code repositories, CI/CD pipelines, test automation, monitoring, and alerting systems.


Skilled at crafting compelling data narratives through tables, reports, dashboards, and other visualization tools


Strong problem-solving and analytical skills with excellent attention to detail.


Excellent communication skills and experience collaborating with technical and business stakeholders.


Preferred:


Master's degree in Computer Science, Engineering


Experience building data pipelines in an Azure Databricks environment


Knowledge of Databricks architecture and core components, including Databricks Lakehouse, Delta Lake, Databricks SQL, Apache Spark clusters, Unity Catalog, D