About Clay
Our mission is to help organizations turn any growth idea into reality.
We see growth as a creative practice, not a formula. Finding and reaching your best-fit customers takes unique ideas and constant iteration. As AI makes execution faster and tactics easier to copy, creativity is the only lasting advantage. We're already helping thousands of customers — including Anthropic, Waste Management, Figma, and Ramp — go to market with unique data, signals, and AI research.
In 2025, we crossed $100M in revenue and raised a $100M Series C at a $3.1B valuation, backed by world-class investors including Sequoia, CapitalG, and First Round. We also completed our first first employee tender offer and launched a community equity round, for our customers, agency partners, and club members.
Some things to know about us:
Our community includes 11,000+ customers, 150+ integration partners, 125+ agencies, 50+ Clay clubs, and 30k members on Slack.
Our culture is unique inside and outside of work. Our team members are also DJs, activists, writers, clowns, marathoners, skydivers, psychedelic therapists, social workers, and more.
All employees can work for free with world-class coaches who specialize in creativity, management, and more.
Our operating principles — including negative maintenance and non-attached action — guide our work. Read more about them here.
Read about us in the NYT, Forbes, First Round Review, and more.
Hear from our employees directly on our Glassdoor page!
Analytics Engineering @ Clay
We're looking for an AI Analytics Engineer to scale Clay's most critical data system: the Revenue + Cost + Margin Engine - the single source of truth that powers every team (finance, sales, product, exec). You'll join a small, high-leverage data team and work with novel data: accurate workspace-level AI margins that enable decisions no other company can make.
This role is ideal for someone who thinks in systems, not dashboards. You're fluent in the modern data stack (dbt, Snowflake, Streamlit) and already using AI tools (Cursor, MCPs, LLMs) to move 5x faster than traditional methods. The foundation is set; your job is to scale it into a lean, streamlined workhorse.
What you'll do
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Build and understand the warehouse of data
Scale the Revenue + Cost + Margin Engine (every closed-won deal, every dollar of revenue, every dollar of cost, and the margins that result)
Architect the data models that power the entire company - finance, sales, product, exec all depend on this
Work with novel data: accurate workspace/account-level margins for AI consumption
Ensure the foundation is audit-ready and immutable (financial precision, not "pretty good")
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Understand how the org consumes information
Learn how different parts of the business view things, use data, and could use AI to 10x their workflows
Design systems that align with how teams actually work, not how we wish they worked
Build quick views using AI and Streamlit - only create dashboards for what matters
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Design and implement systems to scale information flow
Build AI-native infrastructure (MCPs, Cursor workflows) that makes the warehouse instantly accessible
Enable anyone to query the database, read Notion docs, and post to Slack through ChatGPT or Cursor
Design the data flows and information architecture that keep the company aligned as it scales 10-100x
What we're looking for
Mastery of the modern data stack: Fluent in dbt, Snowflake, Streamlit, and the surrounding ecosystem. You know how to design data models that scale.
AI-native workflows: You're already using AI tools (Cursor, MCPs, LLMs) to write code, document models, and solve technical hurdles.
Systems thinking: You think in terms of data flows, sources of truth, and business logic - not just dashboards or reports.
Understanding of how businesses consume data: You're curious about how different teams view things, use data, and could use AI to 10x their workflows.
Financial precision: You understand that while AI helps you move fast, you are the final auditor. You take pride in the integrity of the numbers.
High agency: You don't need a roadmap. You find the biggest, ugliest data problem and you solve it.
Nice to have
Experience with consumption-based revenue models or complex pricing logic
Familiarity with MCPs (Model Context Protocol) or similar AI tooling
Prior experience in a high-growth SaaS environment
Understanding of financial reporting requirements (though not required - we'll teach you)
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