Full-Time

Senior Data Scientist

Snowflake

Snowflake

10,001+ employees

Cloud-based data warehousing and analytics platform

Compensation Overview

$156k - $224.2k/yr

Company Historically Provides H1B Sponsorship

Menlo Park, CA, USA

In Person

Master's

Category
Data & Analytics (1)
Required Skills
Redshift
Python
Data Science
Neural Networks
Forecasting
BigQuery
Apache Spark
SQL
Machine Learning

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Requirements
  • An advanced degree in Statistics, Mathematics, Operations Research, Economics, Engineering, Computer Science, or a related quantitative field, or equivalent practical experience.
  • At least 5 years of experience building and operating production-grade statistical, forecasting, or machine learning systems with meaningful business impact.
  • Strong hands-on experience with forecasting problems, ideally in revenue, demand, supply, capacity, consumption, or other business-critical planning contexts.
  • Deep modeling skills, including sound judgment about when to use simpler driver-based approaches versus advanced methods such as hierarchical, Bayesian, probabilistic, deep learning, or state-space models.
  • Strong proficiency in Python and SQL, including the ability to manipulate data, build models, and productionize analyses efficiently.
  • Experience working with large-scale data systems and modern data platforms such as Snowflake, BigQuery, Redshift, or Spark.
  • Demonstrated ownership of high-stakes outputs used by business or executive stakeholders, including the ability to respond quickly and effectively when something changes or breaks.
  • Strong systems thinking, including experience with monitoring, validation, anomaly detection, reproducibility, and safe model or pipeline changes in production.
  • The ability to explain complex forecast movements, uncertainty, and tradeoffs to senior business stakeholders.
  • A track record of leading through ambiguity, influencing cross-functional partners, and elevating technical standards across a team.
Responsibilities
  • Own and improve production forecasting systems for core financial metrics, especially current-quarter and longer-range revenue and bookings in a consumption-based business.
  • Build and maintain scalable statistical and machine learning models that translate customer behavior, usage patterns, ramps, renewals, and business context into actionable forecasts.
  • Design forecasting approaches that prioritize accuracy, stability, explainability, robustness, and operational trust.
  • Establish and maintain standards for model evaluation, backtesting, forecast decomposition, uncertainty quantification, and scenario analysis.
  • Diagnose material forecast movements by separating true business change from data issues, one-time events, timing shifts, and model artifacts.
  • Improve the reliability of the forecasting stack through monitoring, anomaly detection, validation checks, change management, reproducibility, and lifecycle management.
  • Partner with Analytics Engineering and other Data Scientists on shared infrastructure, upstream dependencies, and production processes across a complex forecasting system.
  • Work cross-functionally with Finance, Sales, and Product to understand business drivers, incorporate business context, and improve forecast quality.
  • Communicate with senior leaders about forecast changes, risks, and model behavior, especially in high-visibility or time-sensitive situations.
  • Raise technical rigor, production quality, and decision-making standards across the team through mentorship and technical leadership.
Desired Qualifications
  • Forecasting in a consumption-based, usage-based, or hybrid SaaS business model.
  • Experience with executive-facing financial forecasts or planning systems.
  • Experience owning models or data products with daily or near-daily production outputs.
  • Experience operating in environments where reliability, trust, and fast issue response matter as much as raw model performance.
  • Experience mentoring other scientists and helping shape shared modeling or production standards.

Snowflake provides a cloud-based data platform called the Snowflake Data Cloud that lets customers store, process, and analyze large amounts of data. It operates on a pay-per-use model, charging for data stored and for computing power used. The platform is designed to be easy to use and handles many data types, supporting use cases from data warehousing and data lakes to data engineering, data science, and data applications. Snowflake differentiates itself with a cloud-native architecture that separates storage and compute, enabling on-demand scaling for diverse workloads across organizations, from startups to large enterprises. The company’s goal is to offer a scalable, flexible, and accessible data platform that unifies storage, processing, and analytics in one service.

Company Size

10,001+

Company Stage

IPO

Headquarters

Menlo Park, California

Founded

2012

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Simplify Jobs

Simplify's Take

What believers are saying

  • Fiscal 2026 product revenue reached $4.472 billion, up 29%, with $489.7 million operating income.
  • Dynamic model routing cuts token costs up to 3x, directly expanding AI workload adoption.
  • Oppenheimer and Wells Fargo raised targets in August 2026 after stronger consumption and migrations.

What critics are saying

  • Databricks keeps converging on Snowflake’s core analytics stack, compressing pricing power by 2026.
  • The 2024 Snowflake breach still drives MDL 24-3126 and settlement pressure in 2026.
  • MFA enforcement remains incomplete through October 2026, leaving password-only access as an existential target.

What makes Snowflake unique

  • Snowflake’s Cortex AI Gateway governs model choice across Anthropic, OpenAI, Google, and open models.
  • Its data cloud keeps analytics and AI workloads inside customer-controlled, secure Snowflake accounts.
  • Snowflake Marketplace native apps let partners like Alteryx and Evolution Analytics run in-place.

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Benefits

We've got your back - We offer comprehensive health insurance plans, health savings accounts, robust retirement plans, and generous life and disability insurance.

A Balanced Lifestyle - All Snowflakes have access to our weekly online lunch and learns, virtual workout classes, and ergonomic work-from-home equipment. We offer on-demand mental health and wellness programs to support our employees and their families.

Your People Matter - Help offset the cost of growing your family with our fertility benefits and family planning resources. Count on our generous time-off and various leave plans for you to rest, refuel, and sustain a great work-life balance.

Global Snowflake Team - No matter where you are in the world, we will get you connected and supported with a work-from-home setup.

Treat Yourself - Personalize your Snowflake benefits by tapping into our employee discounts and pre-tax selections.

Invest In Your Future - Eligible employees enjoy new hire equity, Employee Stock Purchase Plan (ESPP), and a quarterly bonus or commission program.

Growth & Insights and Company News

Headcount

6 month growth

-5%

1 year growth

-4%

2 year growth

-4%
Yahoo Finance
Aug 21st, 2026
Palantir posts $1.22B cash flow and 155% Rule of 40 score versus Snowflake's -$326M operating income

Palantir reported revenue of $1.94 billion, up 93% year-over-year, with US commercial revenue jumping 149% to $764 million. The company posted a Rule of 40 score of 155% and generated $1.22 billion in free cash flow. Chief executive Alex Karp attributed growth to demand for AI sovereignty. Snowflake delivered product revenue of $1.33 billion, growing 34%, its strongest sequential dollar gain. Its Cortex Code product is now used in over 7,100 accounts, whilst Snowflake Intelligence accounts more than doubled quarter-over-quarter. The companies employ contrasting strategies. Palantir pursues a closed, integrated technology stack. Snowflake follows an open ecosystem approach, recently signing a $6 billion multi-year AWS agreement and expanding partnerships with OpenAI and SAP. Snowflake reported negative GAAP operating income of $326 million.

Associated Press
Aug 18th, 2026
Snowflake introduces dynamic model routing to cut AI costs with automatic model selection

Snowflake has introduced dynamic model routing within its Cortex AI Gateway and flagship AI products, alongside expanded access to open-source models. The feature automatically selects the optimal AI model based on task complexity and cost, directing simpler tasks to efficient models whilst reserving frontier models for complex reasoning. Dynamic model routing is integrated across Snowflake CoCo and Snowflake CoWork, and available to third-party AI agents. The company is also adding models including DeepSeek-V4-Flash 0731 and GLM-5.3 to its Cortex AI portfolio. Internal testing showed agents using dynamic routing achieved up to three times greater token efficiency whilst maintaining quality. In separate tests, engineering teams completed pull-requests with 25 per cent greater token efficiency. The features aim to help enterprises reduce AI spending whilst maintaining data governance within Snowflake's platform.

Associated Press
Aug 18th, 2026
Evolution Analytics launches WIRE™ for claims on Snowflake Marketplace

Evolution Analytics has launched WIRE™ for Claims, a Snowflake Native App, on Snowflake Marketplace. The application enables insurance carriers, third-party administrators, and claims organisations to automate claims triage, routing, investigation, and resolution whilst keeping policyholder data within their Snowflake environment. WIRE™ uses Snowflake Cortex AI to provide operational context and AI-powered guidance for claims processing. The platform runs entirely inside a customer's Snowflake account, allowing organisations to leverage native security, governance, and encryption capabilities without moving sensitive data. "Most claims organisations have invested heavily in data, yet many critical claims processes still rely on manual work," said Vince Belanger, founding principal at Evolution Analytics. The application aims to reduce cycle times, improve adjuster productivity, control operational costs, and deliver consistent customer experiences for insurance companies.

Yahoo Finance
Aug 15th, 2026
Snowflake hits $4.7B revenue with 29% growth despite $1.3B loss vs Verizon's steady $138B

Snowflake reported revenue of $4.7 billion for the fiscal year ended 31 January 2026, representing 29.2% growth year-over-year. The cloud data platform provider counted 790 Forbes Global 2000 companies as customers but posted a net loss of $1.3 billion for the period. Verizon generated $138.2 billion in revenue for the year ended 31 December 2025, up 2.5% from the previous year. The telecommunications giant reported net income of $17.2 billion and produced $20.1 billion in free cash flow whilst serving 146.8 million wireless retail connections. The comparison highlights contrasting investment profiles: Snowflake offers high growth potential with significant volatility, whilst Verizon provides steady income through its 5.8% dividend yield but carries substantial debt of $131.1 billion.

Yahoo Finance
Aug 12th, 2026
Oppenheimer raises Snowflake price target to $400 on AI coding agent CoCo adoption

Oppenheimer has raised its price target for Snowflake to $400 from $295, citing stronger consumption trends and growing adoption of AI coding agent CoCo. The firm expects product revenue of roughly $1.469 billion, approximately 3% to 4% above consensus, while maintaining its Outperform rating. Analysts said channel checks showed strength across regions and industries, including larger deals and faster migrations. CoCo is helping customers build AI applications whilst encouraging migration of traditional analytics workloads onto Snowflake's platform. In its fiscal first quarter, Snowflake's product revenue grew 34% to $1.33 billion. The company had 779 customers generating over $1 million in trailing-12-month product revenue. Snowflake reports second-quarter results on 2 September.