Home › Companies › Tonal › Senior Data Scientist
Senior Data Scientist
Tonal · San Francisco, CA · Remote · Active · Ashby
Job facts
| Field | Value |
|---|---|
| Company | Tonal |
| Title | Senior Data Scientist |
| Normalized title | - |
| Department / team | Technology / Technology, Data Science and AI |
| Location | San Francisco, CA, United States |
| Work model | Remote / Remote |
| Employment type | Full Time |
| Salary | - |
| Status | active |
| ATS provider | Ashby |
| Posted / first seen | — / 2026-05-29 |
| Changed / last seen | 2026-05-29 / 2026-06-06 |
Related slices
| Page | What it contains | Open |
|---|---|---|
| Company jobs | Active postings from Tonal. | Open |
| Company breakdowns | Role, location, ATS, and work model facets for this company. | Open |
| ATS provider jobs | Active postings observed through Ashby. | Open |
| Provider filtered search | The same provider as a filtered job collection. | Open |
| City jobs | Active postings in San Francisco. | Open |
| Department jobs | Active postings in Technology. | Open |
| Work model jobs | Active Remote postings. | Open |
| Lifecycle events | Open, update, close, and reopen events for this posting. | Open |
| Original posting | Canonical source or apply URL captured from the ATS. | Open |
Linked records
| Company | Tonal |
| Source | 69ee3037-cfa6-48d2-ab57-4096ce7a64db |
| ATS provider | Ashby |
Description
Overview This Senior Data Scientist will drive causal and machine learning-based analyses to measure the impact of product features on user behavior, engagement, and business outcomes, translating results into clear, actionable recommendations. The role partners closely with product, analytics engineering, and fellow data scientists to build in-house causal inference tools, define KPIs, build production-ready analytical workflows, and deliver high-quality, governed visualizations. Success in this role requires strong statistical judgment, experience with product-driven ML, and a focus on delivering insights that are both trustworthy and immediately usable by cross-functional stakeholders
Key Responsibilities Causal Inference
Design, implement, and productionalize statistically rigorous causal analyses to quantify the impact of product features on user behaviors, engagement metrics, and downstream business outcomes
Develop and maintain causal frameworks that link product interventions to behavioral change, engagement shifts, and business performance
Select and apply appropriate experimental and observational methods, leveraging regression- and ML-based approaches where appropriate to control for confounding and heterogeneity
Validate causal findings through robustness checks, sensitivity analyses, and clear articulation of assumptions and limitations
Translate results into clear, actionable recommendations that inform product strategy, marketing decisions, and executive-level prioritization
Develop analytical notebooks and workflows that are reproducible, scalable, and suitable for deployment in production environments
KPI Development
Partner with product and cross-functional stakeholders to define feature-level engagement and efficacy KPIs aligned with business objectives
Incorporate model-derived signals (e.g., predicted engagement, risk scores, uplift estimates) into KPI frameworks where appropriate to improve measurement and decision-making
Implement testing, documentation, and versioning practices to ensure KPI definitions are reliable, discoverable, and consistently interpreted
Maintain metric documentation and metadata to support self-service analytics and cross-functional consumption
Data Visualization
Design and deliver high-quality visualizations in Looker and Databricks that clearly communicate analytical and ML-driven insights without requiring supplemental explanation
Ensure visual outputs are intuitive, decision-oriented, and aligned with established data visualization best practices
Incorporate generative AI capabilities into visualization and analytics assets where appropriate to improve interpretability and cross-functional adoption
Support visualization governance by implementing CI/CD workflows, validation checks, and approval processes to ensure production dashboards meet quality and consistency standards prior to release
Qualifications Strong statistical experience in causal inference methods like Difference in Difference, propensity score matching, regression discontinuity analysis, and randomized control trials to help link product changes to business outcomes
Applied experience building and evaluating machine learning models for prediction, segmentation, or uplift in a product or business context
Ability to develop reproducible, scalable analytical notebooks and workflows that transition effectively from development to production environments
Experience partnering with product teams to define feature-level KPIs and building robust, well-documented dbt models to expose those metrics across analytics layers
Strong track record of creating clear, decision-oriented visualizations in tools such as Looker and Databricks that communicate insights unambiguously to cross-functional stakeholders
3-5+ years of experience
Tools and libraries: dbt, databricks, statsmodels, scipy, scikit-learn, causalml, prophet
Languages: sql, python, r
At Tonal, we believe that the unique and varied lived experiences of our teammates contribute to our overall strength. We don’t just appreciate differences, we celebrate them, and we always seek people that represent a wide variety of backgrounds. We’re dedicated to adding new perspectives to the team and designing employee experiences that contribute to your growth as much as you do to ours. If your experience aligns with what we’re looking for (even if you don’t check every single box), send us your application. We would love to hear from you!
Tonal is committed to meeting the diverse needs of people with disabilities in a timely manner that is consistent with the principles of independence, dignity, integration, and equality of opportunity. Should you have any accommodation requests, please reach out to us via our confidential email, [email protected]. All requests will be addressed and responded to in accordance with Tonal’s Accessibility Policy and local legislation.
Full job record
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| Board ID | 69ee3037-cfa6-48d2-ab57-4096ce7a64db |
| Provider | ashby |
| Provider Job Key | 01e967dc-64ce-4541-8944-b0792c78c9ea |
| Title | Senior Data Scientist |
| Normalized Title | — |
| Status | active |
| Active | yes |
| Location Text | San Francisco, CA |
| Department | Technology |
| Team | Technology, Data Science and AI |
| Employment Type | full_time |
| Workplace Type | remote |
| Remote Policy | remote |
| Country | United States |
| Region | CA |
| City | San Francisco |
| Salary Raw | — |
| Salary Min | — |
| Salary Max | — |
| Salary Currency | — |
| Salary Period | — |
| Source URL | https://jobs.ashbyhq.com/tonal/01e967dc-64ce-4541-8944-b0792c78c9ea |
| Apply URL | https://jobs.ashbyhq.com/tonal/01e967dc-64ce-4541-8944-b0792c78c9ea/application |
| First Seen At | 2026-05-29 06:03:12Z |
| Last Seen At | 2026-06-06 20:36:51Z |
| Last Checked At | 2026-06-06 20:36:51Z |
| Last Changed At | 2026-05-29 06:03:12Z |
| Inactive At | — |
| Source Posted At | — |
| Source Updated At | — |
| Raw Payload Uri | s3://job-postings-prod-raw-590183727216/raw/provider=ashby/board=tonal/date=2026-06-06/2026-06-06T20-36-49-819Z-9a5545de02e338761a656b6d6f18f0756da9950d4cce6a9103da117dcdaa253e.json |
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