ACS
Temporary - Data Engineer
GA Atlanta · San Francisco, California · Chicago, Illinois · New York, New York · Boston, Massachusetts
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hirly's read of this role
- Role family
- Data & ML
- Seniority
- Mid level
- Country
- US
- Work mode
- On-site / unstated
- First seen by hirly
- 9 Oct 2026
Derived automatically from the posting. Upload your resume above to see how the role scores against it.
the posting
At the American Cancer Society, we're working to end cancer as we know it, for everyone. Our employees and 1.3 million volunteers are raising the bar every single day. We are a culture comprised of diverse backgrounds and experience, to better serve our communities.
The people who work at the American Cancer Society focus their diverse talents on our lifesaving mission. It is a calling. And the people who answer it are fulfilled.
The American Cancer Society (ACS) is seeking a skilled Data Engineer to join our mission-driven team in the fight against cancer. As a key member of ACS’s growing enterprise data practice, the Data Engineer will play a central role in designing, building, and optimizing a modern data ecosystem leveraging Microsoft Azure, Snowflake, and Dbt. This position will focus on developing scalable, high-performance data pipelines and infrastructure to enable advanced analytics, machine learning, and research insights across the organization. Working closely with the Senior Director of Data and collaborating with analytics engineers and data scientists, the Data Engineer will help establish and enforce best practices in data architecture, automation, and governance. This is an opportunity to shape the foundation of ACS’s data capabilities and make a meaningful impact through data innovation.
ESSENTIAL FUNCTIONS:
- Design, develop, and orchestrate modern data pipelines and integrations (30%) — Architect and manage scalable data workflows using Azure Data Factory , Snowflake , dbt , and cloud orchestration tools such as Prefect.io or Airflow , ensuring high performance and reliability.
- Implement and manage cloud-based data infrastructure (20%) — Administer and optimize data environments in Microsoft Azure , including Cosmos DB , Snowflake , and related services, performing configuration, monitoring, and cost optimization.
- Develop and deploy advanced data engineering solutions (20%) — Utilize Python for complex data transformation, automation, and performance optimization within robust CI/CD pipelines with comprehensive unit testing and peer code reviews .
- Integrate data from diverse sources (10%) — Leverage ingestion platforms such as FiveTran , Rivery.io , or OpenFlow to streamline and automate data collection from internal and external systems.
- Collaborate with cross-functional teams (10%) — Partner with analytics engineers, data scientists, and business stakeholders to design and refine data models that power research, visualization, and machine learning initiatives.
- Support data governance, security, and documentation (10%) — Implement and enforce best practices for data security, access control, and compliance , including Snowflake user and instance management.
EXPERIENCE/QUALIFICATIONS:
- Minimum Degree Required: Bachelor's Degree in Computer Science, Engineering, Computational Biology, or equivalent experience
- Years of experience: 3+ years of relevant work experience. 3+ years of building a modern data pipeline, including the ETL, cloud-storage, reporting, and deployment
KNOWLEDGE, SKILLS, AND ABILITY:
- Advanced proficiency in cloud data engineering within Microsoft Azure , including services such as Azure Data Factory , Azure Databricks , and Cosmos DB ; experience with Snowflake for data warehousing and administration.
- Strong expertise in SQL and Python , including development of complex ETL/ELT workflows, automation scripts, and performance-optimized data transformations.
- Hands-on experience with modern orchestration and ingestion platforms such as Prefect.io , Apache Airflow , FiveTran , Rivery.io , or OpenFlow , supporting automated and scalable data movement.
- Proven experience implementing CI/CD practices for data engineering — including automated testing, code reviews, version control (e.g., GitHub/GitLab), and deployment pipelines.
- Experience designing and managing large-scale, high-density data systems , including structured, semi-structured, and unstructured data such as genomics, imaging, and biospecimen datasets.
- Familiarity with BI and visualization tools (e.g., Power BI , Tableau , Looker ) and the ability to translate complex research or analytic requirements into optimized data models.
- Strong understanding of healthcare and research data domains , including claims, electronic health records (EHR), survey, and clinical datasets; knowledge of data governance, compliance, and privacy standards (e.g., HIPAA).
- Demonstrated collaboration skills working with data scientists, analytics engineers, and researchers to deliver high-quality, reliable, and well-documented data solutions.
TRAVEL REQUIREMENTS:
Occasional travel- 10-15% - may be required for department or program/project meetings, vendor management, or enterprise workshops.
PHYSICAL REQUIREMENTS:
Availability and ability to work after hours, weekends, holidays, etc. as needed, to be on call and/or to fulfill job responsibilities and requirements.
The starting rate is $45 to $48. The final candidate's relevant experience/skills will be considered before an offer is extended. Actual starting pay will vary based on non-discriminatory factors including, but not limited to, geographic location, experience, skills, specialty, and education.
ACS provides staff a generous paid time off policy; medical, dental, retirement benefits, wellness programs, and professional development programs to enhance staff skills. Further details on our benefits can be found on our careers site at: jobs.cancer.org/benefits. We are a proud equal opportunity employer.
Listed on hirly, a job board. hirly is not the employer: ACS is hiring for this role.
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