Analytics Engineer
Linear · North America
Skills in this posting
Extracted from the posting text by the instrument — the demand side, read literally.
The posting
At Linear, we're building the product development system for teams and agents. AI is fundamentally changing how software gets built, and we’re shaping the tools this new era requires.
Founded in 2019, Linear has become the platform of choice for more than 40,000 companies (including OpenAI, Coinbase, and Ramp) to plan, build, and ship their products. Today, our team is distributed across North America, Europe, and Australia, and we’re continuing to grow internationally. What unites us is relentless focus, fast execution, and a deep care for software craftsmanship.
The Data team works across Linear, supporting Product, Engineering, and GTM. We own our data pipelines, warehouse, dashboards, analysis, and integrations with third-party tools. As a small team, we focus on building systems that make data accessible and useful across Linear. We’re looking for someone who wants to help shape how we architect, build, and use data as we grow.
Location & work mode
Linear is a remote-first company, with optional co-working offices in San Francisco, New York, and London. This role is open to candidates based in North America. You can work from anywhere within this region. We value deep focus and async collaboration, with intentional moments to connect in person through team off-sites, optional co-working, and occasional travel.
What you’ll do
Work across Product and GTM (Marketing, Sales, Customer Success, and Finance) to turn ambiguous questions and operational needs into useful metrics, models, analyses, and workflows
Build and maintain dbt models and pipelines that create trusted views of our product, customers, and business
Design clear, maintainable data models and improve the testing, documentation, performance, and reliability of our data stack
Build dashboards and self-service reporting in Metabase and Hex, and dig deeper when the answer requires more than a chart
Operationalize data through reverse ETL and partner with GTM Engineering on the scoring, segmentation, automations, and internal tools that help our teams scale
Balance fast, pragmatic answers with durable solutions, recognizing when a one-off request should become a reusable model or workflow
Find ways to leverage emerging tools, LLMs, and coding agents to accelerate development, analysis, testing, and documentation while maintaining a high bar for correctness
What we're looking for
5+ years of experience in analytics engineering, data analytics, or data engineering, ideally at a fast-moving software company
Exceptional SQL and strong hands-on experience with dbt and a modern cloud data warehouse
Track record of owning data projects end-to-end, from shaping an ambiguous problem to shipping something people rely on
Strong data modeling judgment: you think clearly about grain, reusable components, interfaces, dependencies, and maintainability without relying on a single prescribed methodology
Analytical judgment: you know when to answer quickly, when to investigate deeply, and how to turn complex findings into a clear recommendation
Comfortable moving between technical implementation and business context, from debugging a data model to understanding product adoption or sales efficiency
High ownership mentality: self-directed, pragmatic, and willing to challenge a request or approach when something does not make sense
Strong communication skills and experience partnering directly with both technical and non-technical teams
Comfortable using LLMs and coding agents as part of your day-to-day development workflow
Our tech
This stack reflects the systems you’ll work in. You’re not expected to have experience with everything listed, but you should be comfortable learning quickly and working across the full lifecycle of data.
Data Warehouse: Snowflake, dbt Cloud
Dashboards / Analysis: Metabase, Hex
ETL / rETL: Hevo, Fivetran
GTM tools: Hubspot, Pocus, Clay
What we offer
We're a small, focused team that cares deeply about the quality of our work and the people we do it with. Here's what you can expect:
Competitive salary and equity
Employee-friendly equity terms including early exercise in the US and extended exercise windows
Daily meal and coffee stipend on every workday
Paid co-working space or desk
Health coverage (based on country requirements)
5 weeks paid vacation, plus local statutory holidays
4 months paid parental leave
Paid month off after 4 years & every 2 years thereafter
Regular team events and off-sites
Remote-first with no required commute
Learn how we think and work
A story about our mission: Read Me
Our hiring process: How we hire at Linear
How we work: Designing remote work at Linear
How Linear uses Linear: How our Customer Experience team works in Linear
A video series: Conversations on Quality
Building our teams: Why and how we do work trials at Linear
Our recent Series C Fundraise and Giving our team liquidity
Linear is an equal opportunity employer. We do not discriminate based on race, color, religion, gender identity or expression, sexual orientation, national origin, age, disability, veteran status, or any other protected characteristic under applicable law.
Excerpt from the original listing. The full, current text lives at the source. Read and apply there →
The PivotHop read
- What a data engineer actually earnsmedian, seniority, by country
- Alternative careers for a data engineerevery measured route out
- Data Architect → Data Engineer48% readiness
- Data Analyst → Data Engineer31% readiness
- All open data engineer rolesthe full board
Where these skills also reach
Adjacent occupations measured from the same postings — readiness is what a data engineer’s profile already covers.
- 27 open data architect roles92% readiness from data engineer
- 573 open solutions architect roles62% readiness from data engineer
- 238 open data analyst roles60% readiness from data engineer
- 31 open database administrator roles57% readiness from data engineer
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