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Hands-On Big Data Architect - Hybrid Chicago

Job in Northern, Floyd County, Kentucky, USA
Listing for: Publicis Groupe ANZ
Full Time position
Listed on 2026-09-25
Job specializations:
  • Software Development
    Data Engineering
Salary/Wage Range or Industry Benchmark: 135000 - 190000 USD Yearly USD 135000.00 190000.00 YEAR
Job Description & How to Apply Below
Location: Northern

Company description

Publicis Sapient is a digital transformation partner helping established organizations get to their future, digitally enabled state, both in the way they work and the way they serve their customers. We help unlock value through a start-up mindset and modern methods, fusing strategy, consulting, and customer experience with agile engineering and problem-solving creativity. United by our core values and our purpose of helping people thrive in the brave pursuit of next, our 20,000+ people in 53 offices around the world combine experience across technology, data sciences, consulting, and customer obsession to accelerate our clients’ businesses through designing the products and services their customers truly value.

Overview

Manager Big Data Engineering - Hybrid Chicago

As a Manager Data Engineering, you will be responsible for designing, building, and optimizing data platforms that enable scalable, high-performance data processing and analytics. You will work closely with cross-functional teams to develop and implement data solutions that drive business insights and innovation.

Your Impact
  • Combine your technical expertise and problem-solving passion to work closely with clients, turning complex ideas into end-to-end data solutions that transform our clients’ business.
  • Translate client requirements into system design and develop solutions that deliver measurable business value.
  • Lead, design, develop and deliver large-scale data systems, data processing, data transformation, and data platform modernization initiatives.
  • Build and optimize batch and streaming data pipelines across modern cloud data platforms and distributed processing frameworks.
  • Support AI-enabled engineering use cases by designing high-quality data foundations, retrieval patterns, context engineering approaches, and scalable data services that power agentic and machine learning solutions.
  • Automate data platform operations and manage post-production systems, observability, quality, reliability, and operational processes, including telemetry pipelines that capture prompt, response, trace, latency, token, and cost data for AI-enabled services in a queryable form.
  • Conduct technical feasibility assessments and provide project estimates for the design and development of solutions.
  • Mentor, support, and grow junior team members while contributing hands‑on to delivery.
Qualifications Your Skills & Experience
  • Demonstrable experience implementing end-to-end data pipelines and production‑grade data platforms.
  • Hands‑on experience with at least one leading public cloud data platform:
    Amazon Web Services, Microsoft Azure, or Google Cloud Platform;
  • Experience with Databricks as a data engineering platform is strongly preferred, including working with notebooks, jobs, Delta Lake, or similar lakehouse patterns.
  • Strong Python proficiency and practical experience using Python‑based tooling for data engineering, automation, platform development, or AI engineering workflows.
  • Implementation experience with column-oriented database technologies such as Big Query, Redshift, Vertica, or similar platforms;
    No

    SQL database technologies such as DynamoDB, Bigtable, Cosmos DB, or similar; and traditional database systems such as SQL Server, Oracle, or MySQL.
  • Experience implementing data pipelines for both streaming and batch integrations using tools and frameworks such as Glue ETL, Lambda, Google Cloud Dataflow, Azure Data Factory, Spark, Spark Streaming, or similar technologies.
  • Experience with data modeling, warehouse design, fact/dimension implementations, and modern lakehouse or data mesh patterns.
  • Experience with code repositories, continuous integration, automated testing, release management, and production support practices.
  • Familiarity with…
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