Pinterest

Sr. Software Engineer, Machine Learning, tvScientific

Pinterest$155K — $320K *
US-AnywhereRemote in San Francisco, CA
Media
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • Strong production Python skills for building robust applications
  • Solid understanding of statistics and machine learning fundamentals
  • Familiarity with modern AI tools and their practical applications
  • Experience in adtech or CTV advertising, especially RTB
  • Clear written communication skills for collaborative decision-making
  • Ability to navigate ambiguity and take ownership of projects
  • Bachelor's in Computer Science, Mathematics, Engineering, or equivalent experience
  • 4+ years of relevant industry experience

Responsibilities

  • Write production Python for real-time bidding and campaign optimization
  • Train, deploy, and monitor ML models for ad decision-making
  • Build and enhance incrementality measurement systems for advertisers
  • Design and implement new ML products for audience targeting and attribution
  • Employ LLMs and generative AI to create internal development tools
  • Serve as a technical lead and mentor within a distributed engineering team

Benefits

  • Flexible working environment tailored to departmental needs
  • Transparent workplace culture fostering equity and inclusion
  • Opportunities for professional development and growth
Full Job Description
About tvScientific

tvScientific is the first and only CTV advertising platform purpose-built for performance marketers. We leverage massive data and cutting-edge science to automate and optimize TV advertising to drive business outcomes. Our solution combines media buying, optimization, measurement, and attribution in one, efficient platform. Our platform is built by industry leaders with a long history in programmatic advertising, digital media, and ad verification who have now purpose-built a CTV performance platform advertisers can trust to grow their business.

As a Sr. Machine Learning Engineer at tvScientific, you'll build the ML and AI systems behind our Connected TV ad-buying platform: real-time bidding, campaign optimization, and incrementality measurement at scale. We're an adtech company solving a hard problem: making CTV advertising actually measurable. Our platform helps advertisers buy ads across the CTV ecosystem: Hulu, Pluto TV, Disney+, HBO Max, and hundreds of FAST channels: and prove that those ads drove real business outcomes.

What you'll do:
  • Write production Python that powers real-time bidding, model training, and campaign optimization
  • Train, deploy, and monitor ML models that decide which ads to show, when, and at what price: millions of bid decisions per second
  • Build and improve our incrementality measurement systems: helping advertisers understand the true causal lift of their CTV spend
  • Design and implement new ML products across the ad-buying lifecycle: audience targeting, bid optimization, pacing, and attribution
  • Use LLMs and generative AI to build internal tools that accelerate how we develop, test, and ship ML systems
  • Serve as a technical lead and mentor on a distributed engineering team

What we're looking for:
  • Strong production Python skills: you write code that runs in prod, not just notebooks
  • Solid statistics and ML fundamentals: you can reason about experiment design, model evaluation, and when simpler approaches beat complex ones
  • Familiarity with modern AI tools and good judgment about where they add value
  • Adtech or CTV experience: familiarity with RTB, programmatic advertising, supply-path optimization
  • Clear written communication: we're a distributed team and writing is how decisions get made
  • Comfort with ambiguity: you'll own problems end-to-end in a fast-moving environment, from scoping to shipping
  • Bachelor's degree in Computer Science, Mathematics, Engineering, related field, or equivalent experience
  • 4+ years of industry experience
  • Nice-to-Haves:
    • Experience using Cursor, Copilot, Codex, or similar AI coding assistants for development, debugging, testing, and refactoring
    • Familiarity with LLM-powered productivity tools for documentation search, experiment analysis, SQL/data exploration, and engineering workflow acceleration
    • Causal inference: uplift modeling, synthetic controls, difference-in-differences, or incrementality testing
    • Big data experience with Scala and Spark
    • Systems programming experience in Zig or similar (C, C++, Rust)
    • Reinforcement learning or bandit algorithms in production
    • Experience building agentic AI systems or LLM-powered workflows
    • MLOps experience: model deployment, monitoring, and pipeline orchestration on AWS


In-Office Requirement Statement:
  • We recognize that the ideal environment for work is situational and may differ across departments. What this looks like day-to-day can vary based on the needs of each organization or role.

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


#LI-SM4

#LI-REMOTE

At Pinterest we believe the workplace should be equitable, inclusive, and inspiring for every employee. In an effort to provide greater transparency, we are sharing the base salary range for this position. The position is also eligible for equity. Final salary is based on a number of factors including location, travel, relevant prior experience, or particular skills and expertise.

Information regarding the culture at Pinterest and benefits available for this position can be found here.

US based applicants only

$155,584-$320,320 USD

About Pinterest

Pinterest is a social media platform that allows users to discover and save ideas for recipes, home decor, fashion, and more. The company was founded in 2010 and is headquartered in San Francisco, California. Pinterest has over 400 million monthly active users and is available in over 30 languages. The company's mission is to help people discover and do what they love.
Learn more about Pinterest
Size
3,225 employees
Market Cap
$16 billion
Industry
Net Income
-$128.3 million
Founded
2009
5 Year Trend
+53.9%
Revenue
$1.6 billion
NASDAQ

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