The Trade Desk is a global technology company and the world’s leading independent platform for digital advertising, with nearly 4,000 employees across more than 30 offices. Our technology helps advertisers reach the right audiences across the open internet — from streaming TV and podcasts to mobile apps, news, and more. Advertising powers the content people love. By making it more transparent, effective, and responsible, we help support trusted journalism, quality entertainment, and creators worldwide. The world’s brands and agencies rely on us to reach their customers and grow their businesses responsibly. The scale of our platform brings unique technical challenges — from processing massive datasets in real time to building systems that operate reliably on a global scale. When you work here, your impact is worldwide. We welcome diverse perspectives, encourage curiosity, and build teams that learn from one another. If you’re driven to solve meaningful challenges, we’d love to meet you.
Applied scientists at TTD work closely with engineering throughout the lifecycle of the product,from ideation to production and monitoring. Our applied scientists are end-to-end owners. Youwill participate actively in all aspects of designing, researching, building, and delivering data-focused products for our clients and traders.Bringing objective, transparent measurement to the open internet is core to TTD’s strategy, andretail conversion data is an essential part of that. This role owns that data. This particular role isresponsible for the research and application of state-of-the-art statistical and modelingtechniques to solve measurement problems centered around retail conversion data. This rolewill be the team’s expert on retail data — understanding the ins and outs of every source weuse, how each is collected and where it can mislead, and owning the statistical integrity of thesedatasets end to end. Day to day, this role will explore new data sources, build new-buyer andconversion reports, project and scale attributed numbers up and down defensibly, imputemissing data, monitor data quality, and reason carefully about how retail data behaves insidevarious measurement models. The work of this role ensures our retail measurement solutionsare statistically sound and robust, and it helps steer product decisions toward methods that holdup.
The main job directions include:- Own our retail conversion datasets end to end — be the team’s expert on these sources, howthey are collected, and where they can mislead.- Explore and process data from a variety of retail sources, building the datasets and pipelinesthat downstream measurement relies on.- Apply rigorous statistics to scale and project our measurement numbers, impute missing data,and produce new reports — always with careful attention to bias and uncertainty.- Monitor data quality and the stability of our metrics, distinguishing real shifts from noise.- Reason about how retail data feeds conversion lift, geo lift, and attribution, and validate thatour methods are robust on real data.- Partner with cross-functional stakeholders and communicate learnings in compelling ways thatsteer product toward statistically sound, robust solutions.WHO WE ARE LOOKING FOR
- Proficient in Python, SQL, and PySpark, with a strong passion for enhancing andexpanding your technical skills. You are strong at data processing — exploring, cleaning,and transforming large, messy datasets — and have a deep understanding of thefoundations of statistics, including estimation, sampling, and measurement error.
- Hands-on experience building statistical solutions and data pipelines at scale, with atrack record of owning a project end-to-end (from research to production) andpartnering witha cross-functional team of scientists, engineers, and product managers. You arecomfortable becoming the go-to expert on a complex, messy dataset.
- A keen sense of data intuition and statistical rigor: you can reason about how a datasource biases a result, defend a number that cannot be directly measured with anhonest error bound, and tell a solution that is statistically sound and robust from onethat only looks good in the short term. Achievements like first-author publications orclear project successes are a plus.
WHAT YOU BRING TO THE TABLEWe do not expect you to know every technology we use when you start at TTD. What we caremost about is that you can learn quickly and solve complex problems using the best tools for thejob. However, we find that the most successful candidates typically come in with something likethe following experience:
- BS/MS with 4+ years or a PhD with 2+ years of experience working in a DS or ML rolethat involves bringing products from ideation to production.
- Experience working with retail, panel, survey, or conversion data, and reasoning abouthow a data source biases a downstream estimate (match-rate composition, coverage andpanel skew, deduplication).
- Experience estimating population quantities from partial or biased samples: projectingan observed or matched subset up to a full population via sample weighting orcalibration, and attaching honest error bounds (e.g. via resampling).
- Rigorous missing-data imputation practice that carries the added uncertainty through tothe final estimate, with the judgment to recognize when data is missing in a way noimputation can fix.
- Proficient in Python and SQL.
- Experience building monitoring, anomaly detection, and data-quality checks onproduction metrics and data feeds is a plus.
- Experience in causal inference and lift measurement is a plus.
- Experience in programmatic advertising is a plus.
- Experience running heavy workloads on a distributed computing cluster (especially EMRor Databricks), leveraging technologies like Spark to work with large datasets preferred.
- The ability to communicate with diverse stakeholders, making architecturerecommendations, ensuring effective execution, and measuring quality of outcomes
As an Equal Opportunity Employer, The Trade Desk is committed to creating an inclusive hiring experience where everyone has the opportunity to thrive.
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