Senior Analytics Engineer

Posted 6 Hours Ago
Hiring Remotely in United States
Remote or Hybrid
150K-230K Annually
Senior level
Big Data • Cloud • Productivity • Software • Database • Analytics • Automation
Jellyfish—where AI, data, and engineering meet to shape the future of software development.
The Role
Design and maintain analytical data models, transformation frameworks, data-quality checks, semantic definitions, and metric consistency across analytics and customer-facing products. Partner with engineering, product, and analytics teams to document data, improve lineage, and enable trustworthy self-service data usage. The role requires advanced SQL, analytics engineering, dimensional modeling, testing, and collaborative translation of business concepts into precise data definitions.
Summary Generated by Built In

Jellyfish helps engineering organizations understand how their teams work, and that starts with data people can actually trust. We are looking for a Senior Analytics Engineer to help turn our growing data platform into a consistent, well-modeled foundation for analytics, product development, and customer-facing insights. You’ll sit between raw data and the people consuming it, defining durable models, improving data quality, and making sure important business concepts mean the same thing everywhere they appear.

If you care about clean semantic models, reproducible transformations, and making it easy for others to confidently use data, you’re the perfect fit.

What you’ll actually be doing:

  • Data Modeling - You’ll design and maintain analytical data models that turn raw engineering and product data into understandable, reusable datasets. You’ll help define facts, dimensions, metrics, and canonical business entities that can be shared across the organization.

  • Transformation Frameworks - You’ll help introduce and mature tools like dbt for managing transformations, testing, documentation, and lineage. You’ll establish patterns that make analytical transformations easier to understand, review, and maintain.

  • Data Quality - You’ll build automated checks for completeness, freshness, uniqueness, referential integrity, and other important quality signals. You’ll help move us from discovering bad data downstream to detecting problems closer to their source.

  • Metric Consistency - You’ll partner with Product, Engineering, and Analytics to establish clear definitions for important metrics and ensure those definitions are implemented consistently across dashboards, APIs, and customer-facing experiences.

  • Developer Enablement - You’ll make it easier for engineers and analysts to understand and use our data. That includes documentation, examples, reusable models, and helping teams understand how data flows through the platform.

You’re a great fit if:

  • SQL Fluency - You are extremely comfortable working with complex SQL and can reason about performance, correctness, and maintainability.

  • Analytics Engineering Experience - You’ve worked with tools like dbt or similar transformation frameworks and understand concepts like staging models, intermediate models, marts, testing, lineage, and semantic layers.

  • Strong Data Modeling Fundamentals - You understand dimensional modeling, normalized and denormalized models, facts and dimensions, grain, slowly changing dimensions, and how modeling decisions affect downstream consumers.

  • Data Quality Mindset - You think of tests, contracts, and documentation as part of the product, not cleanup work.

  • Collaborative Translator - You can work with engineers, analysts, product managers, and domain experts to turn ambiguous business concepts into precise data definitions.

  • Pragmatic Problem Solver - You understand that the goal is trustworthy, usable data, not building the theoretically perfect warehouse.

Bonus Points:

  • You’ve worked in a rapidly scaling SaaS environment.

  • You’ve helped introduce dbt or an equivalent modeling framework into an existing data platform.

  • You’ve worked with Databricks, Delta Lake, or lakehouse architectures.

  • You’ve worked with data catalogs, lineage, or governance platforms like OpenMetadata.

  • You’ve helped define semantic models or metric contracts consumed by both analytics and production applications.

A list of job experiences and qualification requirements is great, but humility, a performance-driven attitude, and a team-player approach are most important to us. We love to have fun and win in the process. We only hire people who have a passion for building great companies in an environment where a sense of humor is a must.

Occasional travel may be required.

Applicants must be authorized to work for any employer in the US. We are unable to sponsor or take over sponsorship of an employment visa at this time.

Let’s talk about us!
This is all about you, but you want to know a little about us. Jellyfish is the leading intelligence platform for AI-Integrated engineering, helping more than 1,000 companies including DraftKings, Keller Williams and Blue Yonder, leverage AI to transform how they build software. By combining the industry’s deepest engineering dataset with context-rich intelligence, Jellyfish helps R&D organizations understand what’s driving impact, adopt proven industry best practices, and make smarter decisions across AI adoption, planning, delivery, and engineering performance.

Skills Required

  • Extremely strong SQL fluency, including performance, correctness, and maintainability
  • Experience with analytics engineering and transformation frameworks such as dbt
  • Understanding of staging models, intermediate models, marts, testing, lineage, and semantic layers
  • Strong data modeling fundamentals, including dimensional modeling, normalized and denormalized models, facts, dimensions, grain, and slowly changing dimensions
  • Experience establishing data quality tests, contracts, documentation, and reliable data practices
  • Ability to collaborate with engineers, analysts, product managers, and domain experts to define precise data concepts
  • Pragmatic problem-solving approach focused on trustworthy, usable data
  • Experience in a rapidly scaling SaaS environment
  • Experience introducing dbt or an equivalent modeling framework into an existing data platform
  • Experience with Databricks, Delta Lake, or lakehouse architectures
  • Experience with data catalogs, lineage, or governance platforms such as OpenMetadata
  • Experience defining semantic models or metric contracts used by analytics and production applications
  • Authorization to work for any employer in the United States without sponsorship

What the Team is Saying

Sydney Bufkin
Jevin Koleth
Daniel Boaitey
Ben Kotrc
Andrew Lau

Jellyfish Compensation & Benefits Highlights

  • Healthcare Strength Top-tier medical and dental plans are highlighted, with vision options, company‑paid short‑ and long‑term disability, and voluntary life, accident, critical illness, and hospital coverage. Mental‑health resources and inclusive care such as transgender healthcare and abortion‑travel support are also described.
  • Leave & Time Off Breadth Flexible Time Off (unlimited/discretionary) plus 13 company holidays are consistently advertised. Paid sick days and bereavement leave are also described in benefit overviews.
  • Parental & Family Support Paid parental leave and family medical leave are included, with signals like an onsite Mother’s Room and active parent communities. Company‑sponsored family events and ERGs further underscore family support.

Jellyfish Insights

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The Company
HQ: Boston, MA
225 Employees
Year Founded: 2017

What We Do

Jellyfish is the leading intelligence platform for AI-Integrated engineering, helping more than 1,000 companies including DraftKings, Keller Williams and Blue Yonder, leverage AI to transform how they build software. By combining the industry’s deepest engineering dataset with context-rich intelligence, Jellyfish helps R&D organizations understand what’s driving impact, adopt proven industry best practices, and make smarter decisions across AI adoption, planning, delivery, and engineering performance.

Why Work With Us

Are you fueled by innovation and energized by challenges? At Jellyfish, every day is a chance to make an impact, and do the work that matters most. We solve meaningful challenges that shape how engineering organizations operate. We are committed to cultivating a Jellyverse where everyone can do their best work, creating a place where we all thrive.

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Jellyfish Offices

Hybrid Workspace

Employees engage in a combination of remote and on-site work.

We are remote first with employees located throughout the US. Jellyfish does have a Boston office for those that wish to collaborate in person.

Typical time on-site: Flexible
HQBoston, MA
Our company is in a new beautiful office space overlooking Post Office Square and downtown Boston. We are surrounded by many cafes, restaurants, and shops. Plus, the office is easy to get to with multiple train stops close by, bike racks and parking underground.

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