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GTM Data ScientistClay LabsUnited States

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GTM Data Scientist

Clay Labs
  • US
    United States
  • US
    United States

Über

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!
Data @ Clay
We’re looking for a
GTM Data Scientist
to help make Clay data-driven from the ground up. You’ll join a team of experienced data scientists and analytics engineers, while partnering closely with
Product and Go-to-Market teams
to build foundational data models, dashboards, and analyses that teams rely on every day. This role is ideal for someone early in their data career who wants to learn quickly from senior teammates, take on meaningful ownership from day one, and do that work inside one of the fastest-growing AI startups while digging deeply into data to understand why things are happening, not just what is happening.
What you’ll do
Build and own analytics data models Write clean, maintainable SQL against
Snowflake
to power core metrics, dashboards, and analytical workflows.
Build and iterate on analytics metrics and tables Build and iterate on metrics and tables in
dbt
, and surface them through dashboards in
Sigma
to help teams understand product usage, performance, and change over time.
Explore data deeply to answer open-ended questions Use
SQL
as your primary tool, with
Python or R
in a notebook environment like
Hex
when helpful, to investigate trends, anomalies, and product behavior and connect analyses back to real business questions.
Help operationalize data Support reverse ETL workflows using
Census
, helping make modeled data actionable in the tools teams use day-to-day.
Translate questions into insight Partner with cross-functional teams to turn ambiguous questions into clear, useful analytical outputs.
What we’re looking for
Strong SQL fundamentals — comfortable with joins, CTEs, window functions, and clear query structure
Experience building analytical data models or metrics tables using
dbt
or similar analytics-engineering workflows
Comfortable working with BI tools like Sigma, Looker, Tableau, Mode, or similar
Strong analytical intuition
— able to ask the right questions, explore data thoughtfully, and synthesize clear, well-reasoned conclusions
Clear communicator who can share insights with technical and non-technical partners
Deeply curious about product usage and business performance — motivated to go beyond the what to understand the why, without getting lost in rabbit holes
Nice to have
Experience with
Snowflake
or other similar cloud data warehousing tools
Comfortable using
SQL
as the primary analysis tool, with the ability to use
Python or R
when helpful for deeper or more efficient analysis
Familiarity with
Hex
or other notebook-based analysis tools
Familiarity with
Census
or other reverse ETL tools
Prior experience in a product-led or B2B SaaS environment
  • United States

Sprachkenntnisse

  • English
Hinweis für Nutzer

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