Wispr Flow
Marketing
ProductDataScientist
Neural analysis suggests this role is
optimal for Mid candidates.
“Product Data Scientist at Wispr Flow. Skills: Product data science, Experimentation, Funnel analysis, Growth modeling, Data intuition. Build and own core product and growth metrics: activation, retention, engagement, and conversion. Proactively surface insights - patterns in usage cohorts, feature adoption signals, product funnel drop-offs, engagement inflection points”
Industry & Context.
Turn data into product decisions; Shape priorities and deliver actionable analysis
What They're Looking For.
Must Have
5+ years of experience in data science or quantitative analytics, Meaningful time spent at a consumer SaaS or consumer tech company, Experience with experimentation - from hypothesis design through analysis, SQL skills, Fluency working within a modern data stack (dbt, ClickHouse, Snowflake, or similar), Python proficiency for analysis and modeling, Experience with embedded with product teams, Clear communicator who can make complex analysis legible to non-technical stakeholders
Nice to Have
Ability to build frameworks that let the product team run and learn from tests at scale, Sound judgment in ambiguous situations to shape priorities and deliver actionable analysis
What You'll Do.
Build and own core product and growth metrics: activation
Proactively surface insights - patterns in usage cohorts
feature adoption signals
product funnel drop-offs
engagement inflection points
Analyze A/B experiments end-to-end - from hypothesis formation through to causal interpretation and recommendations
Ensure metric definitions and data models are clean
and align with business and product processes
How You'll Work.
Team & Collaboration
Work directly alongside PMs, engineers, and our analytics team; Partner with product managers and engineers across our core product surface areas to define and answer the questions that drive decisions; Collaborate closely with analytics engineers on our dbt + ClickHouse stack
Communication Scope
Make complex analysis legible to non-technical stakeholders
Full Job Description
ABOUT WISPR Wispr Flow is making it as effortless to interact with your devices as talking to a close friend. Today, Wispr Flow is the first voice dictation platform people use more than their keyboards — because it understands you perfectly on the first try. It’s context-aware, personalized, and works anywhere you can type, on desktop or phone. In 2026, in addition to dictation, we're focused on building native actions — an agentic framework that understands you, and works reliably. We’re a team of AI researchers, designers, growth experts, and engineers rethinking human-computer interaction from the ground up. We value high-agency teammates who communicate openly, obsess over users, and sweat the details. We thrive on spirited debate, truth-seeking, and real-world impact. We're grown our revenue +150% every quarter for the last 4 quarters, and have raised $81M from Tier 1 VC firms and other well-known angels. We're looking for a Product Data Scientist to be the analytical backbone of our product and growth team. You'll work directly alongside PMs, engineers, and our analytics team to turn data into product decisions - from instrumentation and experimentation to funnel analysis and growth modeling. This is not a reporting role. You'll own the analytical layer of how we understand user behavior and help us build the data intuition that drives product strategy. What You'll Do - Build and own core product and growth metrics: activation, retention, engagement, and conversion - with particular depth on the nuances of a cross-platform, PLG consumer product - Proactively surface insights - patterns in usage cohorts, feature adoption signals, product funnel drop-offs, engagement inflection points - Partner with product managers and engineers across our core product surface areas to define and answer the questions that drive decisions - Analyze A/B experiments end-to-end - from hypothesis formation through to causal interpretation and recommendations - Collaborate closely w
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