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Data Infrastructure Jobs in Chicago, IL (NOW HIRING)

Data Engineer

Chicago, IL · On-site

$118K - $141K/yr

Infrastructure Enhancement & Collaboration (20%) Contribute to evolution of the QIG data ... infrastructure by identifying opportunities for efficiency gains, automation, and scalability.

This includes automating infrastructure provisioning using Infrastructure as Code (IaC). * Provide architectural analysis for data integrations including definition of standards for scalability ...

This includes automating infrastructure provisioning using Infrastructure as Code (IaC). * Provide architectural analysis for data integrations including definition of standards for scalability ...

This is a high-impact leadership role at the intersection of data engineering, governance, AI infrastructure, and stakeholder partnership -- sitting inside a healthcare technology company where the ...

Data Engineers

Chicago, IL

$118K - $141K/yr

Develop secure, stable, scalable long-term plans for the flow of hospital data. * Assist in the development of scalable data infrastructure and platforms to collect and process large amounts of data ...

Data Engineer, Trading

Chicago, IL · On-site

$118K - $141K/yr

Data Engineer, Trading, Chicago, IL A proprietary trading firm is seeking a Data Engineer with Trading experience to join its Data Infrastructure team, to help improve and extend the data platform.

Data Engineers

Chicago, IL · On-site

$118K - $141K/yr

Develop secure, stable, scalable long-term plans for the flow of hospital data. * Assist in the development of scalable data infrastructure and platforms to collect and process large amounts of data ...

Senior Data Base Engineer

Chicago, IL · On-site

$154K - $170K/yr

Groupon's data infrastructure underpins every merchant deal, every customer transaction, and every operational decision the business makes. As we scale and modernize the platform, the quality of our ...

... performance data infrastructure in financial services. This is both a people leadership and business-building role requiring someone who has successfully sold into or built teams serving ...

... performance data infrastructure in financial services. This is both a people leadership and business-building role requiring someone who has successfully sold into or built teams serving ...

Senior Data Base Engineer

Chicago, IL · On-site

$154K - $170K/yr

Groupon's data infrastructure underpins every merchant deal, every customer transaction, and every operational decision the business makes. As we scale and modernize the platform, the quality of our ...

Responsibilities - Designing and implementing data infrastructure and systems to facilitate efficient data processing and analysis - Developing and maintaining data pipelines, integration, and ...

Responsibilities - Designing and implementing data infrastructure and systems to facilitate efficient data processing and analysis - Developing and maintaining data pipelines, integration, and ...

Data Engineer, Python & ETL

Chicago, IL · On-site

$118K - $141K/yr

Data Engineer, Python & ETL, Chicago, IL A proprietary trading firm is seeking a Data Engineer, Python & ETL to join its Data Infrastructure team, to help improve and extend the data platform. This ...

As an organization early in our data journey, we are actively building our data infrastructure, tools, and processes from the ground up. This role offers a unique opportunity to shape and influence ...

Senior Data Analyst

Chicago, IL · On-site

$110K - $130K/yr

As an organization early in our data journey, we are actively building our data infrastructure, tools, and processes from the ground up. This role offers a unique opportunity to shape and influence ...

Data Engineer, Data & AI Platforms

Chicago, IL · On-site

$118K - $141K/yr

Transition data infrastructure to a modern architecture built around AWS. * Improve and scale existing client data pipelines while keeping client deliverables running smoothly. * Support the ...

Senior Data Analyst

Chicago, IL

$88K - $111K/yr

As an organization early in our data journey, we are actively building our data infrastructure, tools, and processes from the ground up. This role offers a unique opportunity to shape and influence ...

Showing results 41-60

Data Infrastructure information

See Chicago, IL salary details

$25.7K

$126.6K

$200.7K

How much do data infrastructure jobs pay per year?

As of Aug 7, 2026, the average yearly pay for data infrastructure in Chicago, IL is $126,570.00, according to ZipRecruiter salary data. Most workers in this role earn between $102,128.00 and $160,121.00 per year, depending on experience, location, and employer.

What are some typical challenges faced in a data infrastructure role and how are they addressed?

Professionals in Data Infrastructure often face challenges such as scaling systems to handle growing data volumes, ensuring data security, and maintaining high availability. Addressing these requires proactive system monitoring, automation, regular performance tuning, and implementing best practices for backup and disaster recovery. Collaboration with data engineering, analytics, and IT security teams is essential to resolve bottlenecks and optimize data flows. Staying current with emerging technologies also helps in innovating and improving existing infrastructure over time.

What are the key skills and qualifications needed to thrive in the data infrastructure position, and why are they important?

To thrive in Data Infrastructure, you need a solid understanding of data architecture, database management, and distributed systems, often supported by a degree in computer science or a related field. Proficiency with tools such as SQL, Hadoop, Spark, AWS, and certifications like Google Cloud Professional Data Engineer are highly valued. Strong problem-solving abilities, effective teamwork, and clear communication help professionals excel in this collaborative and fast-evolving area. These skills ensure robust, scalable data systems that support reliable analytics and decision-making across the organization.

What are data infrastructure roles?

Data infrastructure roles involve designing, building, and maintaining the systems and tools that store, process, and manage data within an organization. These roles often require knowledge of databases, cloud platforms, data pipelines, and scripting languages, and may include positions such as data engineer, data architect, or database administrator.

What is a data infrastructure?

A Data Infrastructure job focuses on designing, building, and maintaining the systems that store, process, and manage data for an organization. This includes databases, data pipelines, cloud storage, and data processing frameworks to ensure efficient data flow and accessibility. Professionals in this role work with technologies like SQL, NoSQL, Hadoop, Spark, and cloud platforms to support data engineers, analysts, and scientists. The goal is to provide a scalable, reliable, and secure foundation for handling large volumes of data.

What are the most commonly searched types of Data Infrastructure jobs in Chicago, IL? The most popular types of Data Infrastructure jobs in Chicago, IL are:
What are popular job titles related to Data Infrastructure jobs in Chicago, IL? For Data Infrastructure jobs in Chicago, IL, the most frequently searched job titles are:
What job categories do people searching Data Infrastructure jobs in Chicago, IL look for? The top searched job categories for Data Infrastructure jobs in Chicago, IL are:
Infographic showing various Data Infrastructure job openings in Chicago, IL as of August 2026, with employment types broken down into 1% As Needed, 82% Full Time, 13% Part Time, and 4% Contract. Highlights an 87% Physical, 3% Hybrid, and 10% Remote job distribution, with an average salary of $126,570 per year, or $60.9 per hour.

$118K - $141K/yr

Full-time

Medical, Dental, Vision, Life, Retirement

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


Cushman & Wakefield rating

7.4

Company rating: 7.4 out of 10

Based on 158 frontline employees who took The Breakroom Quiz

109th of 201 rated real estate companies


Job description

Job Title

Data Engineer

Job Description Summary

Key Objectives:
Supports the development, optimization, and maintenance of Cushman & Wakefield's commercial real estate (CRE) forecasting infrastructure across the Americas. This role is focused on engineering robust data pipelines, automating model workflows, and ensuring the integrity and scalability of forecasting systems.
Operate as a self-sufficient data practitioner, capable of independently delivering data solutions or working side-by-side with technology teams to ensure alignment and production readiness of QIG capabilities on an iterative basis.
Works closely with senior economists, analytics leads, and technical teams to deliver high-quality, production-ready data solutions that underpin the firm's House View and related analytical products.

Job Description

Time Series Data Engineering, Maintenance & Automation (40%)

Prototype, build and maintain automated data pipelines for ingesting, transforming, and storing CRE and macroeconomic datasets used in forecasting models.

Ensure data integrity and consistency across all QIG's inputs and outputs through rigorous validation and quality control procedures. Design and enforce structured data interfaces and integration patterns to ensure consistent ingestion and interoperability across internal and external data sources.

Work closely with cross-functional partners to define, refine, and validate data quality rules, using both automated checks and hands-on analysis to ensure outputs meet analytical expectations.

Performs exploratory data analysis and profiling on raw and processed datasets to validate pipeline outputs and identify anomalies or inconsistencies.

Partner with PRI (Property Research & Intelligence), TDS (Technology Data Solutions), GIS (Geographic Information System) and forecasting team to ensure governance of time series data, as revisions to geography-based competitive sets can occur.

Collaborate with PRI, TDS/GIS and other QIG teams to integrate internal and external data sources into infrastructure deployed by QIG teams.

Ensure Global Think Tank, Americas Research and other stakeholders have access to relevant time series (and forecast) data via various tools and capabilities in coordination with QIG leads. Work iteratively with partners to refine data outputs, validate usability, and adjust underlying pipelines or transformations as needed to meet evolving analytical requirements.

Technical Support (40%)

Create and maintain documentation of any synthetic data model architecture, data flows, and diagnostic procedures. Have strong grasp of field-level data lineage and traceability to support transparency, reproducibility, and downstream analytical confidence.

Partner with Head of Data Science & Geospatial Analytics to build state-of-the-art, novel real estate dataset, with additional relevant data geospatially integrated (e.g., demographics, socioeconomic data, zoning or flood maps, climate or walk score information); produce detailed specifications that guide engineering implementation.

Develop internal documentation and process automation, and serve as expert on the integration, application and processing of internal data, 3rd party vendor data and other public data (e.g., Census TIGER, IPUMS) as appropriate with QIG leads.

Advise, integrate and execute normalization methods with internal and external partners, co-developing approaches with technology teams when necessary and validating outputs through hands-on implementation and analysis.

Identify new data use cases for proprietary data, ensure appropriate cleaning and normalization techniques so data can be used in statistical, econometric and other commercial analytics applications.

Infrastructure Enhancement & Collaboration (20%)

Contribute to evolution of the QIG data infrastructure by identifying opportunities for efficiency gains, automation, and scalability.

Support the integration of emerging technologies (e.g., ML/AI, advanced lakehouse patterns) into data workflows under guidance from senior team members through hands-on experimentation, prototyping, or coordination with TDS as needed.

Coordinate with TDS and PRI on internal data and technology initiatives; contributing hands-on development or feedback where appropriate to scale, optimize, and productionize solutions in support of QIG capabilities.

Serve as the key liaison for all external data dependencies; monitor the evolution of 3rd party data products and capabilities, assess their fit against QIG analytical requirements, and produce intake specifications when new sources are approved for integration. As needed, partner with technology teams to evaluate and integrate internally managed data sources.

When/where appropriate, maintain a living requirements register and change log that tracks open data engineering requests, their status in the TDS backlog, acceptance criteria, and QIG sign-off outcomes.

Requirements:

Bachelor's or Master's degree in Data Engineering, Data Science, Computer Science, Statistics, or a related technical field. Advanced degree a plus.

5-7 years of experience in data engineering or a hybrid analytical/engineering role, preferably in a forecasting or analytics/production environment. Real estate experience a plus.

Strong proficiency in Python/R, SQL, Databricks, Delta Lake and data pipeline frameworks (e.g., medallion architecture).

Experience with time series data, econometric / data science modeling workflows, and automation tools.

Familiarity with cloud platforms (e.g., Azure, AWS) and version control systems.

Demonstrated ability to operate in a collaborative, cross-functional environment, contributing both independently and alongside engineering and analytical teams to deliver data solutions.

Comfort working in iterative development settings, balancing hands-on execution with stakeholder collaboration and continuous feedback.

Strong attention to detail and commitment to data quality.

Excellent documentation, communication, and stakeholder management skills; comfortable operating as the technical translator between analytical domain experts and data engineering teams (when appropriate).

Excellent documentation and communication skills for technical audiences. Ability to participate meaningfully in engineering discussions.

Exposure to geospatial data concepts and CRE or macroeconomic datasets.

Experience working with agile/scrum delivery models in a data and analytics context.


Cushman & Wakefield also provides eligible employees with an opportunity to enroll in a variety of benefit programs, generally including health, vision, and dental insurance, flexible spending accounts, health savings accounts, retirement savings plans, life, and disability insurance programs, and paid and unpaid time away from work. In addition to a comprehensive benefits package, Cushman and Wakefield provide eligible employees with competitive pay, which may vary depending on eligibility factors such as geographic location, date of hire, total hours worked, job type, business line, and applicability of collective bargaining agreements.
The compensation that will be offered to the successful candidate will depend on factors such as whether the position is covered by a collective bargaining agreement, the geographic area in which the work will be performed, market pay rates in that area, and the candidate's experience and qualifications.
The company will not pay less than minimum wage for this role.
The compensation for the position is: $ 114,750.00 - $135,000.00Cushman & Wakefield is an Equal Opportunity employer to all protected groups, including protected veterans and individuals with disabilities. Discrimination of any type will not be tolerated.

In compliance with the Americans with Disabilities Act Amendments Act (ADAAA), if you have a disability and would like to request an accommodation in order to apply for a position at Cushman & Wakefield, please call the ADA line at 1-888-365-5406 or emailAccommodations@cushwake.com. Please refer to the job title and job location when you contact us.

INCO: "Cushman & Wakefield"

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