Senior Applied Scientist

1 Week ago • 5 Years + • $204,000 PA - $266,000 PA

Job Summary

Job Description

The Senior Applied Scientist will work on impactful machine learning projects focused on the B2B buyer journey. Responsibilities include applying causal inference methods (A/B testing, observational methods) to measure model performance, data exploration, feature engineering, and model building. The role involves collaborating with various teams to integrate models, evaluate performance, and communicate findings. The projects include ad optimization, account intelligence & scoring, and real-time intent detection. The candidate will contribute to setting up experiments and support backend and front-end A/B tests to measure performance. This role requires a strong understanding of machine learning and causal inference, with the goal of improving the accuracy and reliability of the company's tools and ensuring solutions align with business needs.
Must have:
  • 5+ years in data science/applied machine learning roles
  • Graduate degree in related field
  • Experience in casual inference and ML methods
  • Proficiency in Python and ML libraries
  • Solid SQL skills
Good to have:
  • Experience leading projects or mentoring
  • Prior work in Martech, SalesTech, or Adtech
  • Self-motivated and independent project management
Perks:
  • Paid premiums for Medical and Vision coverage
  • Mental wellness resources
  • Flexible PTO policy
  • 15 paid holidays
  • 401(k) plan
  • Short-term and long-term disability coverage
  • Life insurance

Job Details

Introduction to Demandbase: 

Demandbase is the leading account-based GTM platform for B2B enterprises to identify and target the right customers, at the right time, with the right message. With a unified view of intent data, AI-powered insights, and prescriptive actions, go-to-market teams can seamlessly align and execute with confidence. Thousands of businesses depend on Demandbase to maximize revenue, minimize waste, and consolidate their data and technology stacks - all in one platform.

As a company, we’re as committed to growing careers as we are to building world-class technology. We invest heavily in people, our culture, and the community around us. We have offices in the San Francisco Bay Area, Seattle, and India, as well as a team in the UK, and allow employees to work remotely. We have also been continuously recognized as one of the best places to work in the San Francisco Bay Area including, “Best Workplaces for Millennials” and “Best Workplaces for Parents”!

We're committed to attracting, developing, retaining, and promoting a diverse workforce. By ensuring that every Demandbase employee is able to bring a diversity of talents to work, we're increasingly capable of living out our mission to transform how B2B goes to market. We encourage people from historically underrepresented backgrounds and all walks of life to apply. Come grow with us at Demandbase!

About the Role:

Demandbase is seeking a Senior Applied Scientist to join our ML/Data Science team, where you’ll contribute to impactful machine learning projects that shape the B2B buyer journey. This role is ideal for someone with solid experience in casual inference including experimentation (A/B testing) and observational methods, statistical modeling, machine learning methods, time-series analysis, etc. You will work on a range of projects including account ranking, recommendation systems, intent modeling, and ads optimization. You will also work on setting up experiments (A/B testing) and apply other causal inference methods to measure and compare model performance and assess the impact of the AI/ML tools our team builds.

In this role, you’ll collaborate with experienced Data Scientists, Machine Learning Engineers, Applied Scientists, Product Managers, Data Engineers, Software Engineers, Designers, UX Researchers, etc. offering opportunities to apply your casual inference experience and machine learning skills. A background in ML/Data Science, Econometrics, Statistics, Computer Science, or a related field is ideal.

The base compensation range for this position for candidates in the SF Bay Area is: $204,000 - $266,000. For all other locations, the base compensation range is based on the primary work location of the candidate as our ranges are location specific. Actual compensation packages are based on a wide array of factors unique to each candidate, including but not limited to skillset, years of experience, and depth of experience.

This position is based in San Francisco, CA. Remote will be considered for highly qualified candidates.

What you’ll be doing:

  • Measure Impact and ROI: Apply causal inference methods including experimentation (A/B testing) as well as observational methods (propensity score matching, difference-in-differences, synthetic controls, etc.) to measure the performance of our models and the impact our models have for our customers.
  • Data Exploration, Feature Engineering, and Model Building: Analyze large datasets to support machine learning models, perform feature engineering, and develop and apply machine learning models to our backend and frontend applications.
  • Model Performance and Validation: Evaluate and validate model performance, using metrics to improve accuracy and reliability in production environments.
  • Cross-functional Collaboration: Work with data engineering, product, software engineering, and UX teams to integrate models into workflows, ensuring solutions align with business needs.
  • Communication of Findings: Present analysis and model results to technical and non-technical stakeholders, using data visualizations and clear explanations to convey insights effectively.

Project Highlights

  • Ad Optimization and Personalization: Build models and measure their impact in the space of optimizing ad campaigns and real-time bidding.
  • Account Intelligence & Scoring: Use ML to rank and prioritize accounts within the B2B buying journey.
  • Real-Time Intent Detection: Develop models to capture intent signals that drive real-time sales and marketing actions.
  • Support Experiments: Set up and support backend and front-end A/B tests to measure performance and support model development and rollout decisions.

What we’re looking for:

  • Experience: 5+ years in data science or applied machine learning roles, with demonstrated experience in causal inference and building and deploying models
  • Education: Graduate degree (M.S. or Ph.D.) in Statistics, Econometrics, Computer Science, Machine Learning, Mathematics or a related field.
  • Casual Inference and ML Expertise: Proven experience applying casual inference methods (experimental and observational) as well as ML methods including:
    • Experimentation (A/B testing)
    • Observation Studies (propensity score matching, difference-in-differences, synthetic controls, etc.)
    • Statistical modeling, ML methods
    • Ranking & Recommendation Systems
    • Experience with ad optimization and real-time bidding algorithms (preferred)
  • Technical Skills:
    • Experience with experimentation and causal inference packages such as EconML, CausalImpact
    • Strong proficiency in Python and ML libraries (e.g., Scikit-Learn, Pandas, Numpy)
    • Solid SQL skills
    • Familiarity with ML frameworks such as PyTorch and TensorFlow
    • Experience with Scala is a plus
  • Cloud & Data Tool Familiarity: Experience with Google Cloud Platform or AWS preferred, with BQML or Spark as a plus.

Even Better If You Have:

  • Leadership Experience: Experience leading projects or mentoring within data science teams.
  • Industry Experience: Prior work in Martech, SalesTech, or Adtech environments is a plus.
  • Personal Attributes:
    • Self-motivated and capable of independent project management
    • Analytical mindset with a focus on creating impactful solutions
    • Passionate about metrics and data-driven decision-making
    • Committed to end-to-end ownership of machine learning products

Benefits:

We offer a comprehensive benefits package designed to support your health, well-being, and financial security. Our employees enjoy up to 100% paid premiums for Medical and Vision coverage, ensuring access to top-tier care for you and your loved ones. In addition, we provide a range of mental wellness resources, including access to Modern Health, to help support your emotional well-being. We believe in a healthy work-life harmony, which is why we offer a flexible PTO policy, 15 paid holidays in 2025—including a three-day break around July 4th and a full week off for Thanksgiving—and No Internal Meetings Fridays to give you uninterrupted time to focus on what matters most. For your financial future, we offer a competitive 401(k) plan, short-term and long-term disability coverage, life insurance, and other valuable benefits to ensure your financial peace of mind.

Our Commitment to Diversity, Equity, and Inclusion at Demandbase:

At Demandbase, we believe in creating a workplace culture that values and celebrates diversity in all its forms. We recognize that everyone brings unique experiences, perspectives, and identities to the table, and we are committed to building a community where everyone feels valued, respected, and supported. Discrimination of any kind is not tolerated, and we strive to ensure that every individual has an equal opportunity to succeed and grow, regardless of their gender identity, sexual orientation, disability, race, ethnicity, background, marital status, genetic information, education level, veteran status, national origin, or any other protected status. We do not automatically disqualify applicants with criminal records and will consider each applicant on a case-by-case basis.

We recognize that not all candidates will have every skill or qualification listed in this job description. If you feel you have the level of experience to be successful in the role, we encourage you to apply!

We acknowledge that true diversity and inclusion requires ongoing effort, and we are committed to doing the work required to make our workplace a safe and equitable space for all. Join us in building a community where we can learn from each other, celebrate our differences, and work together.



 

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