Data Engineer
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Role details
Tech stack
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Job description
Youâll be one of the first data engineers on our team. This is hands-on, high-ownership work: building our transformation layer, strengthening our analytics pipelines, and creating the data models that power both internal reporting and the analytics our clients see inside the product.
What Youâll Do
- Build data models: develop dbt models and SQL transformations, backed by tests, that turn raw data into reliable datasets.
- Improve pipeline reliability: help monitor our replication and orchestrated pipelines, investigate data issues, and add quality checks.
- Power reporting: build and refine the datasets and dashboards that internal teams and clients rely on.
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Learn and grow: work closely with senior engineers, take part in code review, and steadily take on more ownership., Nice to have: exposure to dbt, CDC / replication or orchestration tools (e.g. Estuary Flow, Debezium/Kafka, Airflow), a cloud data warehouse (ex. Redshift), a BI tool (ex. Sigma, Looker); comfort with PostgreSQL or a similar database. Our stack
- Databases: PostgreSQL across our production and analytics environments, with room to grow into a cloud warehouse (ex. Redshift) as we scale
- Ingestion: CDC / streaming replication into analytics (evaluating tools like Estuary Flow and Debezium/Kafka)
- Transformation: building out a version-controlled, dbt-based staging/marts layer with data tests and CI/CD
- Orchestration: scheduled, observable pipeline runs (e.g. Airflow or similar)
- BI & embedded analytics: a modern BI and embedding platform (we use Sigma) for internal reporting and in-product client analytics, with a maturing semantic/metrics layer
- Domain: life sciences / healthcare data; comfort working in HIPAA-aware, PHI-handling environments is a plus
Requirements
Weâre open on exact tools - we care about fundamentals and trajectory. Youâll likely have most of the following:
- 3-5 years of professional data engineering experience
- Strong SQL: you write correct, readable SQL and understand relational data modeling
- Data experience: youâve developed data pipelines and transformations in production environments
- Eagerness to learn: you take feedback well, ask good questions, and are excited to grow as a data engineer, Biology, Business Intelligence, Business Intelligence Software, Centers for Disease Control and Prevention (CDC), Chronic Disease, Cloud Computing, Code Reviews, Compensation Management, Continuous Deployment/Delivery, Continuous Integration, Data Management, Data Modeling, Data Sets, Data Warehousing, Embedded Systems, Employee Benefits, Engineering, HIPAA (Health Insurance Portability and Accountability Act), Health Plan, Healthcare, Looker, Metrics, PostgreSQL, Production Systems, Reliability Engineering, Replication and Remote Mirroring, Reporting Dashboards, SQL (Structured Query Language), Testing, Warehousing
Benefits & conditions
- 100% paid employee health benefit options (including medical, dental, and vision)
- 401(k) with employer funded match
- Unlimited Vacation
- Commuter Benefits
- Paid parental leave
- Catered lunch on Fridays
- Wellness stipend
The annual salary range for the target level for this role is $120,000-$150,000 + equity + benefits, including medical, dental, and vision. Final compensation will be determined based on a variety of factors including relevant experience, interview performance, and internal equity.
Courier Health is proud to be an Equal Employment Opportunity employer.
About the company
Courier Health is on a mission to solve one of the biggest and most meaningful opportunities in healthcare: reinvent how people living with chronic and rare diseases are supported.
We are building the future of patient engagement for life sciences companies. Our software is leveraged by biopharma companies to support patients in their complex journey from diagnosis to initiating and remaining on therapy to achieve optimal health outcomes.
About the Team
Youâll join an early and growing data engineering team thatâs shaping the foundations of our data platform. Weâre investing in a modern transformation layer, reliable pipelines, and richer in-product analytics for our clients and youâll have real influence over how that gets built.
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