Staff Data Software Engineer
Get Well Network
| Company | Get Well Network |
| Category | Engineering |
| Location | Bangalore |
| Remote | On-site (inferred) |
| Employment | Not stated |
| Level | Not stated |
| Salary | Not stated by the employer |
| Posted | 8 Jan 2026 |
| Last verified | 30 Jul 2026 |
| Source | Employer career page (greenhouse) |
Description
Opportunity
Get Well is seeking an experienced and highly motivated Staff Data Software Engineer to help build and optimize our cloud-native data platform that powers AI, analytics, and clinical applications. You will play a key role in developing scalable, compliant data infrastructure and pipelines designed specifically for the healthcare domain, while mentoring junior engineers and leading cross-functional initiatives to drive innovation.
This is a hands-on engineering role suitable for someone who thrives at the intersection of modern data engineering, cloud-native platforms, DevOps, healthcare data, and AI enablement. Candidates must have hands-on software development experience with at least one healthcare company—preferably in the provider space—with exposure to EHRs and core healthcare data domains.
Responsibilities
Data Engineering & Platform Development
Design, build, and maintain scalable data pipelines supporting batch and real-time use cases.
Develop and maintain production-grade data workflows that move and transform sensitive healthcare data across distributed systems at scale.
Work with Spark, Databricks, Airflow/Temporal, and dbt to ingest, process, and manage structured and unstructured data.
Design and implement reusable, efficient data models for analytics and AI/ML use cases.
Ensure platform resiliency using CI/CD pipelines, observability tools, and logging frameworks.
Leverage Infrastructure as Code practices using Terraform, CloudFormation, or equivalent to manage cloud resources.
Healthcare Data Integration & Compliance
Ingest and normalize complex healthcare data sets (FHIR, HL7, CCDA, Claims, EDI, Epic/Clarity, etc.).
Familiarity with clinical coding systems and ontologies, such as ICD-10, SNOMED CT, LOINC, or RxNorm.
Collaborate with compliance and security teams to ensure adherence to HIPAA, GDPR , and internal controls.
Implement fine-grained access control, encryption at rest and in transit, audit logging, and data lineage strategies.
AI & GenAI Enablement
Work alongside AI/ML and data science teams to build pipelines feeding predictive and generative models.
Tune data infrastructure for performance across distributed systems and hybrid data stores like SQL, MongoDB, ClickHouse.
Prioritize scalability and flexibility in designing LLM-compatible pipelines and use GenAI best practices for healthcare use cases.
Utilize Spark clusters and query frameworks such as SparkSQL and SPARQL for large-scale data access.
Utilize and manage graph databases (e.g., Neo4j, Amazon Neptune, or similar) to support complex relationship modeling and healthcare data connectivity use cases.
Enable high-quality training data pipelines and implement feature stores and model serving systems.
Data Governance, Quality & Monitoring
Implement data quality frameworks and establish robust validation processes using tools such as Great Expectations or equivalent.
Build automated anomaly detection tools for data drift and integrity checks.
Support data cataloging, metadata management, and ensure consistent documentation across datasets.
Collaboration, Mentorship & Leadership
Act as a mentor to junior engineers through code reviews, paired programming, and technical guidance.
Lead cross-functional projects with teams including clinical informatics, architecture, security, product, and design.
Contribute to and enforce data engineering best practices, patterns, and platform standardization.
Learning and Innovation
Research and evaluate emerging tools and frameworks (e.g., Apache Iceberg, Delta Lake) for incorporation into the platform.
Proactively identify opportunities to improve architecture and leverage evolving trends in GenAI and cloud-native computing.
Qualifications
Education & Experience
Bachelor’s or Master’s degree in Computer Science, Engineering, or related field.
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