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Data Engineering Intern (Fall 2026)

Hone Health
CompanyHone Health
CategoryEngineering
LocationRemote
RemoteRemote
EmploymentNot stated
LevelIntern
SalaryNot stated by the employer
Posted8 Jul 2026
Last verified30 Jul 2026
SourceEmployer career page (greenhouse)
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Description
About Hone Hone is an online medical clinic at the forefront of transforming healthcare and enhancing longevity. We use cutting-edge scientific advancements to empower men and women to take control of their health and unlock their full potential. Our people are the heart of everything we do and drive our success. We approach every project through our brand values: Fight for the Customer Execute Ruthlessly Communicate Candidly, Clearly, and Kindly Collaborate Selflessly Practice Calculated Risk-Taking Maximize Joy and Gratitude Hone has been fully virtual from day one and will continue to be a remote-first employer. Our Ideal Candidate Our ideal candidate is a mission-driven, motivated multi-tasker who is invested in work that is fulfilling and impactful. They embrace change and tackle challenges with enthusiasm. They have an “all-in” disposition towards work, understanding that we are a fast-paced, high-growth organization with evolving priorities. They can excel at both independent tasks and collaborative work, leading with clear and candid communication. They exhibit humble leadership—the ability to drive initiatives forward while remaining excited about continuous learning and development opportunities. They feel strongly about being part of a team that advocates for people to live longer and better lives. The Role Hone is seeking a Data Engineering Intern to join our growing data team. In this role, you will report to the Senior Director of Data, Analytics & Machine Learning and work closely with engineers, analysts, and product teams to support the design, development, and maintenance of data systems and pipelines. You will work closely with stakeholders across the organization to ensure data is accurate, reliable, and accessible. This internship is a hands-on opportunity to work with a modern data stack, including Microsoft Fabric, dbt, PySpark, and SQL, while gaining experience in building scalable data pipelines and analytics-ready datasets.   Primary Responsibilities Key responsibilities for this role include (but are not limited to): Design, build, and maintain scalable data pipelines and ETL processes using Microsoft Fabric (Notebooks, Pipelines, Dataflows) to support analytics, reporting, and product use cases. Integrate data from multiple internal and external sources, ensuring quality, consistency, and reliability across the medallion architecture. Develop and maintain data models and transformations using dbt, contributing to bronze, silver, and gold layer modeling in the Fabric lakehouse. Collaborate with engineers, analysts, and product teams to translate business requirements into technical data solutions — communicating through Slack and tracking work in Azure DevOps (ADO). Participate in data quality checks, testing, validation, and performance optimization across pipeline and model layers. Monitor, optimize, and troubleshoot data infrastructure for performance and scalability in a cloud-native Azure environment. Follow engineering best practices around version control and CI/CD using GitHub, including branch management, pull requests, and code review. Contribute to data documentation and ensure best practices around data governance, reliability, and scalability. Contribute to the continuous improvement of data engineering processes and tools.   Qualifications To qualify for this internship, candidates should meet the following requirements:  Currently pursuing a Bachelor's or Master's degree in Computer Science, Data Engineering, Data Science, Information Systems, or a related field Strong foundational knowledge of SQL and experience querying relational databases. Proficiency in Python and a strong interest in distributed data processing (PySpark experience is a plus). Understanding of data modeling, data warehousing, or analytics engineering concepts — familiarity with dbt or medallion archite
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