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Senior Data Engineer II

Role overview

Qualifications

  • 6–8+ years of data engineering experience with hands-on ownership of production systems
  • Strong pipeline design and orchestration skills in a production environment
  • Advanced SQL: complex transformations, performance tuning, and debugging against a cloud data lake or warehouse
  • Strong Python: production-grade code, scripting, testing, and debugging

Responsibilities

  • Build and operate data pipelines for data movement across systems
  • Assess and improve existing data systems and identify technical debt
  • Build and maintain data infrastructure using established IaC practices
  • Contribute across the data platform and support team flexibility

About the company

Jellyvision logo

Jellyvision

Computer Software / SaaS

We won’t beat around the bush- the world of benefits is hard. It’s time for something better than options that fail to deliver and waste countless millions on unused resources. That’s why Jellyvision is your partner to reinvent how employees choose and use benefits. Our sophisticated technology delights and guides your people to make better benefits decisions — leading them, and you, to a more prosperous future.

Company details

IndustryComputer Software / SaaS
Company size201 - 500

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Job description

Senior Data Engineer

Who we are

Jellyvision is redefining how organizations experience benefits by bringing everything together in one modern, intelligent home. With ALEX Home, we combine our award-winning ALEX® decision support with a flexible benefits administration platform, giving employers and employees a simpler, smarter way to manage benefits year-round.

Our mission is to help organizations reduce complexity, lighten administrative burden, and drive real employee understanding and utilization without forcing rip-and-replace decisions. We meet teams where they are today and give them a clear path to what’s next.

The people behind Jellyvision are creative problem solvers who care deeply about getting it right. We debate ideas, give real feedback, and sweat the details because those details are what turn complicated problems into great experiences for real humans.

We’re a human-first company that trusts smart people to do great work. We value curiosity, kindness, and willingness to try new things, learn fast, and try again. You won’t just show up to do a job, you’ll help build what’s next, solve real problems, and have some fun doing it. 

What’s the role?

As a Senior Data Engineer, you'll be a hands-on engineer on a high-ownership data team. You'll build and operate data pipelines across both legacy and new platform infrastructure, contribute to the data systems that support them, and help improve the operational health of the stack as the platform evolves.

This is a high impact role on a small team. We're looking for someone who builds well, operates with care, and takes ownership of what they ship.

What you’ll do to be successful

Build and operate data pipelines

  • Design and build pipelines that support data movement across systems - ingestion, transformation, compliance, and cross-domain data flows
  • Own pipeline operations end to end: monitoring, incident resolution, and data quality across both new and inherited workloads
  • Make sound pipeline design decisions independently while working within the architecture the team has established

Success looks like: Pipelines you build are reliable, well-tested, and documented. Pipelines you inherit are in better shape than when you found them

Assess and improve existing data systems

  • Develop working knowledge of how existing infrastructure fits together by mapping data flows, dependencies and performance characteristics
  • Improve documentation, observability, data quality, and operational standards across the systems you work in
  • Identify technical debt and reliability risks and bring recommendations grounded in meaningful impact

Success looks like: Systems you’ve touched are better documented, more reliable, and easier to operate. You surface problems before they become incidents.

Build and maintain data infrastructure

  • Provision and manage the infrastructure your data workloads require, using established IaC practices and team standards
  • Contribute to shared infrastructure as the platform evolves, building on new foundations as they become available
  • Maintain and improve the reliability, performance, and cost-efficiency of the infrastructure you own

Success looks like: You’re self-sufficient with the infrastructure your work requires. When the platform evolves, you’re building on it early.

Contribute across the data platform

  • Build enough working knowledge of the team's full system footprint to step in when priorities shift or teammates are unavailable
  • Contribute to platform work as needed — you won't own the new build, but you should be ready to support it when the team needs flexibility

Success looks like: When something comes up outside your primary area, you can step in without a lengthy handoff. That's what small teams require.

Experience & skills you’ll need

Required:

  • 6–8+ years of data engineering experience with hands-on ownership of production systems
  • Strong pipeline design and orchestration skills in a production environment
  • Advanced SQL: complex transformations, performance tuning, and debugging against a cloud data lake or warehouse
  • Strong Python: production-grade code, scripting, testing, and debugging
  • Working knowledge of infrastructure-as-code for provisioning and managing cloud data resources
  • Familiarity with AWS data infrastructure: S3, IAM, and relevant managed services
  • Experience inheriting and improving systems you didn’t build - developing working knowledge, identifying risks, and making them better
  • Clear written communication: you can document a system, a process, or a recommendation so others can act on it independently
  • Comfortable working across team boundaries with engineering and product on data needs
  • Experience using AI-assisted development tools (Claude Code, Cursor, Copilot, or similar) to accelerate engineering workflows

Nice to have:

  • Data science or analytics background — comfortable with model inputs and outputs, statistical concepts, and supporting analytical or decision-support workflows
  • Experience with dbt or comparable transformation frameworks: reading models, understanding grain and dependencies, writing tests
  • Experience with managed ELT tools (Fivetran, Stitch, or similar)
  • Experience in a regulated industry (healthcare, insurance, financial services) with familiarity around compliance-driven data requirements
  • SaaS platform experience, particularly with multi-tenant data architectures

The Details 

  • Location: Remote 
  • Starting Salary: $165,000 - $185,000

What Jellyvision will give you

Check out our benefits here!

Jellyvision is committed to continuous evolution and fostering a more diverse and inclusive workplace where everyone is welcomed, valued, and respected. It doesn’t matter your race, ethnicity, religion, age, disability, sexual orientation, gender, gender identity/expression, country of origin, genetic information, veteran status, marital status, pregnancy or related condition (including breastfeeding), criminal histories consistent with legal requirements or any other basis protected by law...we just want amazing people who are willing to grow along with us.

Although we have a Chicago-based HQ that employees are welcome to work out of whether they’re local or just visiting, this position is also eligible for work by a remote employee out of CA, CO, FL, GA, IL, IN, KY, MI, MN, NC, NY, OH, OR, PA, SC, TN, TX, UT, VA, WA or WI.



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Marcus Rivera

Chief Revenue Officer

m.rivera@company.com
linkedin.com/in/marcusrivera
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