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Staff Data Scientist - Forecasting

Pinterest

Full-time
USA
$163k-$356k per year
forecasting
python
sql
statistics
communication
Apply for this position

What you’ll do

  • Be the technical lead for the forecasting team. Own the strategy and implementation of forecasting models of key company metrics (e.g., monthly active users), delivering accurate, interpretable forecasts at scale.

  • Lead the full modeling lifecycle end to end: problem framing, feature engineering, model development and prototyping, experimentation and backtesting, deployment, monitoring/drift detection, and explainability.

  • Set the forecasting technical vision. Define model architectures and standards, and partner with Engineering to shape the forecasting platform for efficient training/inference today and the scalability needed for the next generation of models.

  • Translate forecasts into decisions. Present outputs, scenario analyses, and recommendation frameworks to senior leadership with clarity and brevity. This is a high‑visibility role with regular VP-level exposure.

  • Drive broader time‑series impact beyond point forecasts—e.g., anomaly detection, automated root‑cause analysis, campaign/channel attribution, and early‑warning signals for business health.

  • Embed forecasting into the business. Partner with BizOps/Finance and product teams to integrate forecasts and insights into operational rhythms,  executive decision-making, and strategic planning.

  • Lead and mentor. Guide the work of at least two data scientists, raising the bar on technical quality, execution, and impact through candid, continuous feedback and coaching.

What we’re looking for

  • 8+ years of combined post-graduate academic and industry experience building and shipping production time‑series/forecasting models with web‑scale data. 

  • A track record of delivering adjustable, well‑calibrated, and explainable forecasting systems that informing decision-making.

  • Strong background in time‑series modeling and applied statistics/econometrics; advanced degree (MS or PhD) preferred.

  • Expertise in at least one scripting language (ideally Python).

  • Strong SQL skills (Hive/Presto/Spark SQL) and experience building reliable data pipelines/workflows (e.g., Airflow).

  • Business acumen and ownership mindset—able to simplify complex problems, connect model outputs to business levers, and prioritize for impact.

  • Excellent communication skills—able to distill complex analyses and uncertainty into concise narratives for executive audiences.

  • Proven technical leadership—success leading critical projects and materially influencing the scope and output of other contributors.

Relocation Statement:

  • This position is not eligible for relocation assistance. Visit our PinFlex page to learn more about our working model.

In-Office Requirement Statement:

  • We let the type of work you do guide the collaboration style. That means we're not always working in an office, but we continue to gather for key moments of collaboration and connection.

  • This role will need to be in the office for in-person collaboration 1-2 times/quarter and therefore can be situated anywhere in the country.

#LI-NM4

#LI-REMOTE

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About the job

Full-time
USA
$163k-$356k per year
Posted 2 hours ago
forecasting
python
sql
statistics
communication

Apply for this position

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Staff Data Scientist - Forecasting

Pinterest

What you’ll do

  • Be the technical lead for the forecasting team. Own the strategy and implementation of forecasting models of key company metrics (e.g., monthly active users), delivering accurate, interpretable forecasts at scale.

  • Lead the full modeling lifecycle end to end: problem framing, feature engineering, model development and prototyping, experimentation and backtesting, deployment, monitoring/drift detection, and explainability.

  • Set the forecasting technical vision. Define model architectures and standards, and partner with Engineering to shape the forecasting platform for efficient training/inference today and the scalability needed for the next generation of models.

  • Translate forecasts into decisions. Present outputs, scenario analyses, and recommendation frameworks to senior leadership with clarity and brevity. This is a high‑visibility role with regular VP-level exposure.

  • Drive broader time‑series impact beyond point forecasts—e.g., anomaly detection, automated root‑cause analysis, campaign/channel attribution, and early‑warning signals for business health.

  • Embed forecasting into the business. Partner with BizOps/Finance and product teams to integrate forecasts and insights into operational rhythms,  executive decision-making, and strategic planning.

  • Lead and mentor. Guide the work of at least two data scientists, raising the bar on technical quality, execution, and impact through candid, continuous feedback and coaching.

What we’re looking for

  • 8+ years of combined post-graduate academic and industry experience building and shipping production time‑series/forecasting models with web‑scale data. 

  • A track record of delivering adjustable, well‑calibrated, and explainable forecasting systems that informing decision-making.

  • Strong background in time‑series modeling and applied statistics/econometrics; advanced degree (MS or PhD) preferred.

  • Expertise in at least one scripting language (ideally Python).

  • Strong SQL skills (Hive/Presto/Spark SQL) and experience building reliable data pipelines/workflows (e.g., Airflow).

  • Business acumen and ownership mindset—able to simplify complex problems, connect model outputs to business levers, and prioritize for impact.

  • Excellent communication skills—able to distill complex analyses and uncertainty into concise narratives for executive audiences.

  • Proven technical leadership—success leading critical projects and materially influencing the scope and output of other contributors.

Relocation Statement:

  • This position is not eligible for relocation assistance. Visit our PinFlex page to learn more about our working model.

In-Office Requirement Statement:

  • We let the type of work you do guide the collaboration style. That means we're not always working in an office, but we continue to gather for key moments of collaboration and connection.

  • This role will need to be in the office for in-person collaboration 1-2 times/quarter and therefore can be situated anywhere in the country.

#LI-NM4

#LI-REMOTE

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