Sr. Data Engineer

eHealthinsurance Services, Inc
United States
1 day ago
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Role details

Contract type
Permanent contract
Employment type
Full-time (> 32 hours)
Experience level
Expert
Experience required
3 years minimum
Compensation
$115,000.0 - $143,800.0
Working hours
Regular working hours

Tech stack

Application Programming Interfaces (APIs) Airflow Amazon Web Services Amazon S3 Computing Platforms Automation of Tests Big Data BigQuery Cloud Database Code Review Computer Programming Continuous Integration
+44 more
Information Engineering Data Governance Extract Transform Load (ETL) Dataspaces Cursor (Graphical User Interface Elements) DevOps Apache Hive Python (Programming Language) Machine Learning MongoDB NoSQL Performance Tuning Power BI Cloud Services DataOps Software Construction Software Engineering SQL Databases Data Streaming Tableau (Software) Cloud Platform System GitHub Copilot Informatica Powercenter Snowflake Apache Spark Event Driven Architecture Containerization Data Lakes Git Flow Kubernetes Information Technology Cassandra Performance Monitor Apache Kafka Machine Learning Operations Data Delivery Api Design Restful APIs Looker Analytics Software Version Control Data Pipelines Docker Amazon Redshift Databricks

Job description

  • Serve as a subject-matter expert on our data ecosystem, including internal systems and third-party data sources, and guide architectural decisions across teams.
  • Architect, build, and maintain scalable data pipelines and real-time streaming architectures using modern frameworks (e.g., Spark, Kafka, dbt).
  • Design and drive adoption of workflow automation and orchestration standards using tools such as Apache Airflow or Matillion.
  • Lead technical design for production-grade ML pipelines in partnership with data scientists and ML engineers, including APIs that serve model predictions.
  • Leverage AI-assisted development tools (e.g., GitHub Copilot, Claude Code, Cursor) to accelerate pipeline development, code review, and testing, and help establish team norms for effective, responsible use.
  • Own data quality, observability, lineage, and governance strategy - defining monitoring, alerting, and metadata tracking best practices for the broader team.
  • Drive logical and physical data modeling efforts in close partnership with data architects, including schema design decisions with long-term scalability in mind.
  • Partner with DevOps and infrastructure teams on platform architecture, performance optimization, and security/compliance strategy.
  • Mentor junior and mid-level data engineers through code review, technical guidance, and knowledge-sharing.
  • Evaluate emerging data tools and technologies, and make build-vs-buy and adoption recommendations to engineering leadership.
  • Demonstrate eHealth’s values in your behaviors, practices, and decisions., * Advanced expertise designing scalable data pipelines, ETL/ELT workflows, data models, and real-time streaming solutions using modern data engineering frameworks and cloud-native platforms.

Requirements

  • Strong proficiency in SQL and Python or Scala, with demonstrated knowledge of software engineering practices including CI/CD, version control, automated testing, code review, and API development.
  • Strong understanding of cloud-based data ecosystems, data quality, observability, lineage, security, and governance principles, with the ability to establish and promote scalable engineering standards and best practices.
  • Ability to analyze complex or ambiguous technical and business problems, evaluate design trade-offs and emerging technologies, and develop practical, scalable solutions with long-term business and technical needs in mind.
  • Strong interpersonal and communication skills with the ability to translate complex technical concepts for technical and non-technical audiences, build effective cross-functional partnerships, and influence technical decisions across teams.
  • Demonstrated ability to lead technical initiatives, provide thoughtful technical guidance and code review, mentor engineers, share knowledge, and help elevate engineering practices and capabilities across the team., * Bachelor’s or Master’s degree in Computer Science, Engineering, or a related technical field.
  • 5+ years of related data engineering experience with a Bachelor’s degree; 3+ years with a Master’s degree; or an equivalent combination of education and relevant experience.
  • Expert-level SQL for complex query development, optimization, and performance tuning across large datasets.
  • Strong programming skills in Python or Scala, with deep experience in software engineering best practices (CI/CD, git workflows, testing, code review).
  • Proven experience architecting solutions on a cloud-native data platform such as Snowflake, BigQuery, Redshift, or Databricks.
  • Deep working knowledge of modern ETL/ELT frameworks (e.g., dbt, Spark, Informatica, Matillion), including framework selection and design trade-offs.
  • Experience with NoSQL databases (e.g., MongoDB, Cassandra, Hive).
  • Substantial experience with cloud platforms, preferably AWS (e.g., S3, Glue, Lambda, Redshift, EMR).
  • Strong command of data modeling (star/snowflake schema), data governance, and security principles, with experience setting standards for others.
  • Demonstrated experience mentoring engineers and/or leading technical initiatives.
  • Excellent communication skills, with the ability to influence cross-functional stakeholders and technical direction.

Preferred:

  • Hands-on experience with Databricks and Delta Lake.
  • Deep knowledge of event-driven architectures and tools (e.g., Kafka, Kinesis).
  • Experience designing RESTful APIs for data delivery and ML model serving.
  • Experience with containerization and orchestration (Docker, Kubernetes) in production.
  • Visualization experience with tools like Tableau, Power BI, or Looker.
  • Exposure to healthcare or health tech, including EHR, claims data, or call center
  • analytics.
  • Experience operating in regulated environments (HIPAA, SOC 2, etc.).
  • Track record of driving automation, data observability, and proactive monitoring
  • initiatives.

Benefits & conditions

  • Generous benefits include medical, dental and vision beginning on your first day of employment
  • 401K with matching
  • Tuition reimbursement
  • Employee stock purchase program
  • 12 company paid holidays and flexible time off (PTO for non-exempt)

Our Values: At eHealth, our core values guide our work:

  • One Team
  • Customer Centric
  • Innovation
  • Integrity
  • Quality
  • Accountability
  • Relentless
  • Financial Stewardship

- The base pay range reflects the anticipated pay range for this position. The actual base pay offered will depend on various factors including individual skills, experience, performance, qualifications, the department budget, and the location where work is performed. Base pay is one component of eHealth’s total rewards package, which also includes an annual performance bonus, plus an array of benefits designed to support employees’ personal and professional wellness. For more information on our total rewards offerings, please visit our career site.

- Base Pay Range -$115,000 - $143,800

About the company

At eHealth, our mission is to expertly guide consumers through their health insurance and related options when, where, and how they prefer. We’re creating a better way - one that’s transparent and trustworthy for both our consumers externally and our employees internally.

Move your career forward while connecting countless people to the life- changing, quality care they deserve. Our diverse team of innovators supports one another in solving some of the toughest challenges. We’re always on the lookout for creative opportunities to do right by our customers, and each other. Together, we’re creating a better way to work, united by our common passion to make a difference.

At eHealth, we’re working to make health insurance more accessible, affordable, and easier to navigate for Americans nationwide. We’re looking for an experienced, motivated Senior Data Engineer to join our data team. You’ll take a lead role in designing scalable, high-performance data pipelines, architecting data solutions, and driving analytics and machine learning initiatives across the business. You’ll partner closely with data scientists, software engineers, and business stakeholders and mentor other engineers to ensure our data is reliable, accessible, and actionable, powering mission-critical decisions in a fast-paced, regulated industry.

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