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Agent guide: [/agents.md](https://www.wearedevelopers.com/agents.md). --- # Software Engineer ( Data Engineer) - **Company:** Xylo Technologies, Inc. - **Location:** United States (Remote available) - **Experience:** Expert - **Contract:** Temporary contract - **Skills:** Java (Programming Language), Application Programming Interfaces (APIs), BigQuery, Cloud Computing, Software Documentation, Data Validation, Information Engineering, Data Infrastructure, Data Flow Control, Python (Programming Language), Google Cloud, Data Ingestion, Containerization, Information Technology, Database Replication, Data Pipelines, Programming Languages - **Published:** June 23, 2026 - **Apply:** https://www.dice.com/job-detail/e425155d-5e1a-4c8a-bf84-31d3430a4af6 ## About the Role Experience working on healthcare, life science, or scientific research projects -A degree or domain knowledge in a life science related field (biochemistry, genetics, biology, etc) -Experience with Google Cloud Platform based infrastructure and services 100% remote. Mayo will provide equipment. Education: Bachelor''''''''s Degree in Computer Science/Engineering or related field with 5 years of experience as noted below; OR an Associate''''''''s degree in Computer/Science/Engineering or related field with 7 years of experience ## Description Scope: The resources will be supporting an engineering team tasked with building a research data platform which will ingest and make discoverable research generated data. Data Engineering Skills & Experience: -Create, verify, and maintain data replication scripts -Create, verify, and maintain data validation, processing, and ingestion pipelines -Deploy and automate the execution of data replication scripts and data pipelines in cloud infrastructure -Create and maintain data catalogs that describe datasets and their contents (i.e. files, file types, tables/views, columns, fields, etc.) -Create, verify, and maintain dashboards and reports that characterize ingested datasets -Create, verify, and maintain data validation scripts/APIs that verify the production dataset contains the correct number of samples/records, expects values/fields/columns are populated, and values are of the correct data type, format, and range. -Deploy and automate the execution of data validation scripts/APIs -Create and maintain user documentation (dataset descriptions, tutorials, code examples, etc.) -Define entitlements, user groups, roles, and permissions utilized to grant access to datasets Programming Languages: Primary pipeline development language with be python. Some datatypes and formats may require the use of other languages (i.e. java, R, etc.) because the libraries/frameworks/sdks available to work with those datatypes and formats are not available in python Operating Systems: Primary operating system for data pipeline execution will be linux, with data pipelines packaged, deployed, and run as containers. Data source systems could be windows or linux based. Infrastructure: Primary data platform and data pipeline execution infrastructure will be hosted on Google Cloud Platform (Google Cloud Platform) utilizing cloud native technologies (i.e. Google Cloud Storage, BigQuery, Google Batch, Dataflow, Cloud SQL, etc.). Data will be replicated from various on-premises sources that include laboratory instruments, network shared drives, and windows desktops attached to instruments. ## Related Videos - [Data Science in Retail](https://www.wearedevelopers.com/videos/586-data-science-in-retail) - [The Cloud is Calling: Answer with In-Demand Skills](https://www.wearedevelopers.com/videos/945-the-cloud-is-calling-answer-with-in-demand-skills) - [Software Engineering Social Connection: Yubo’s lean approach to scaling an 80M-user infrastructure](https://www.wearedevelopers.com/videos/1583-software-engineering-social-connection-yubo-s-lean-approach-to-scaling-an-80m-user-infrastructure) - [Why and when should we consider Stream Processing frameworks in our solutions](https://www.wearedevelopers.com/videos/1085-why-and-when-should-we-consider-stream-processing-frameworks-in-our-solutions) - [Making Data Warehouses fast. 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