Applied Scientist

Posted 2 Days Ago
3 Locations
In-Office or Remote
130K-170K Annually
Junior
Marketing Tech
The Role
Develop and productionize reinforcement learning, contextual bandit, ranking, and prediction models for real-time advertising optimization. Analyze auction dynamics, experimentation, counterfactual evaluation, and large-scale data to improve bidding, targeting, personalization, and campaign outcomes. Collaborate with engineering, science, and product teams to deploy, monitor, retrain, and evaluate high-throughput, low-latency models.
Summary Generated by Built In
WHAT YOU’LL DO

Viant’s Machine Learning team is building autonomous advertising systems that make real-time decisions across targeting, ad optimization, bidding, measurement, and personalization. These systems process hundreds of millions of events daily and operate in the high-throughput, low-latency environment of programmatic advertising.

As an Applied Scientist, you will apply reinforcement learning and related decision-making methods to improve how Viant selects, ranks, and bids on advertising opportunities. You will work across contextual bandits, exploration and exploitation, counterfactual learning, and model-based experimentation to turn research into production systems that improve campaign performance, auction efficiency, and measurable business outcomes.

THE DAY-TO-DAY
  •  Develop, train, and evaluate reinforcement learning, contextual bandit, ranking, and prediction models for ad optimization, bid optimization, targeting, and personalization.
  • Study auction dynamics, delayed feedback, exploration and exploitation, budget constraints, pacing, and reward design to improve real-time advertising decisions.
  • Translate research ideas into production-ready models that operate reliably at high throughput and low latency across Viant’s advertising platform.
  • Design and analyze offline and online experiments, including counterfactual and off-policy evaluation where appropriate, to measure model quality and incremental business impact.
  • Partner with engineers to deploy, monitor, retrain, and improve models in production, addressing issues such as data leakage, class imbalance, drift, calibration, and changing market conditions.
  • Apply quantitative reasoning and statistical modeling to problems involving click-through rate, conversion, return on ad spend, targeting, attribution, identity, and measurement.
  • Collaborate with scientists, engineers, and product partners to define objectives, labels, loss functions, reward signals, evaluation metrics, and practical delivery plans.
  • Contribute to a rigorous, research-oriented team culture through technical communication, code and model reviews, experimentation, and knowledge sharing.
MUST HAVE
  • 1–3 years of experience developing and applying machine learning models, ideally in production or research environments with measurable outcomes.
  • Strong foundation in machine learning, deep learning, probability, statistics, and optimization, with practical experience using Python and frameworks such as PyTorch or TensorFlow.
  • Coursework, research, internship, or project experience with reinforcement learning, contextual bandits, sequential decision-making, recommendation systems, online experimentation, or related methods.
  • Ability to formulate a machine learning problem precisely, including objectives, labels, features, loss or reward functions, evaluation metrics, and experimental design.
  • Experience analyzing large-scale data and communicating technical findings clearly to scientists, engineers, and cross-functional partners.
  • Interest in building models that move beyond offline accuracy and improve real-world decisions in production systems.
  • Experience with reinforcement learning in advertising, marketplaces, recommendation systems, robotics, games, or other sequential decision-making environments.
  • Exposure to contextual bandits, off-policy or counterfactual evaluation, causal inference, auction theory, or online experimentation.
GREAT TO HAVE
  • Experience with digital advertising, real-time bidding, audience modeling, ad ranking, personalization, or large-scale recommendation systems is a plus.
  • Experience with distributed computing, cloud platforms, LLMs, generative AI, or multimodal AI is also welcome, but the core focus of this role is production-oriented reinforcement learning and decisioning.

LIFE AT VIANT

Investing in our employee’s professional growth is important to us, but so is investing in their well-being. That’s why Viant was voted one of the best places to work and some of our favorite employee benefits include fully paid health insurance, paid parental leave and unlimited PTO and more. 

Base compensation range: $130,000 - $170,000
In accordance with California law, the range provided is Viant’s reasonable estimate of the compensation for this role.  Final title and compensation for the position will be based on several factors including work experience and education.




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About Viant
 

Viant Technology (NASDAQ: DSP) is an exclusively buy-side, AI-powered advertising platform purpose-built for CTV. Viant uniquely combines proprietary content intelligence, household-level identity resolution, and person-level attention signals to connect advertisers with real customers and drive measurable outcomes across the open internet. Through its award-winning AI solutions, Viant is building the future of autonomous advertising, where AI doesn't just assist the campaign, it delivers real results. Learn more at viantinc.com.

 
Viant is an equal opportunity employer and makes employment decisions on the basis of merit.  Viant prohibits unlawful discrimination against employees or applicants based on race (including traits historically associated with race, such as hair texture and protective hairstyles), religion, religious creed, color, national origin, ancestry, physical disability, mental disability, medical condition, genetic information, marital status, sex, reproductive health decision making, gender, gender identity, gender expression, age, military status, veteran status, uniformed service member status, sexual orientation, transgender identity, citizenship status, pregnancy, or any other consideration made unlawful by federal, state, or local laws.  Viant also prohibits unlawful discrimination based on the perception that anyone has any of those characteristics, or is associated with a person who has or is perceived as having any of those characteristics.
 
By clicking “Apply for this Job” and providing any information, I accept the Viant California Personnel Privacy Notice.

Skills Required

  • 1-3 years of experience developing and applying machine learning models in production or research environments
  • Strong foundation in machine learning, deep learning, probability, statistics, and optimization
  • Practical experience using Python and frameworks such as PyTorch or TensorFlow
  • Coursework, research, internship, or project experience with reinforcement learning, contextual bandits, sequential decision-making, recommendation systems, online experimentation, or related methods
  • Ability to formulate machine learning problems, including objectives, labels, features, loss or reward functions, evaluation metrics, and experimental design
  • Experience analyzing large-scale data and communicating technical findings clearly
  • Interest in building models that improve real-world production decisions beyond offline accuracy
  • Experience with reinforcement learning in advertising, marketplaces, recommendation systems, robotics, games, or other sequential decision-making environments
  • Exposure to contextual bandits, off-policy or counterfactual evaluation, causal inference, auction theory, or online experimentation
  • Experience with digital advertising, real-time bidding, audience modeling, ad ranking, personalization, or large-scale recommendation systems
  • Experience with distributed computing, cloud platforms, LLMs, generative AI, or multimodal AI
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The Company
HQ: Irvine, CA
315 Employees
Year Founded: 1999

What We Do

Viant® is a publicly traded (Nasdaq: DSP) people-based advertising software company that enables ad buyers to plan, create, execute, and measure their omnichannel digital advertising investments. Its self-service DSP for omnichannel advertising, Adelphic®, provides the ability to execute programmatic advertising campaigns across TV, mobile, desktop, audio, digital out-of-home, and is the only DSP with IPv6 support for CTV environments. Viant’s proprietary, first-party data is linked to 115 million households, over 1 billion connected devices, and is combined with access to more than 280,000 audience attributes from more than 70 people-based data partners to enable scaled and accurate audience targeting and attribution. Viant is an Inc. Best Places to Work award winner and Adelphic is featured on AdExchanger’s Programmatic Power Players list.

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