Economist, Ads Measurement Science (Advertising)

Amazon

New York (NY)

On-site

USD 157,000 - 213,000

Full time

14 days+
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Benefits offered by this job

Health insurance
401(k) matching
Paid time off
RSUs

Job summary

Amazon in New York, NY is seeking an Economist to lead the design, implementation, and validation of large-scale causal inference methodologies for incrementality measurement in advertising. You will collaborate with scientists and engineers, communicating results to leaders and driving production deployments.

The role requires a PhD in economics and experience with Python, SQL, and modern ML methods; 2+ years in related research is preferred.

Qualifications

  • PhD in economics or equivalent required.
  • 2+ years of industry, consulting, government, or academic research experience.
  • Experience in data mining (SQL, ETL, data warehouse, etc.) and handling large complex datasets.
  • Experience implementing modern ML methods (boosted trees, RF, NN).
  • Experience in advertising or related problems is a plus.

Responsibilities

  • Leverage deep expertise in causal inference to develop robust, causally grounded ads measurement solutions.
  • Disambiguate problems to propose clear evaluation frameworks and success criteria.
  • Work autonomously and write high quality technical documents.
  • Partner closely with other scientists to deliver large, multi-faceted technical projects.
  • Share and publish works with the broader scientific community through meetings and conferences.
  • Communicate results clearly to both technical and non-technical audiences and leaders.
  • Contribute new ideas that shape the direction of the team's work.
  • Mentor junior scientists and participate in the hiring process.

Skills

Causal inference
Python
SQL
Machine learning
Data mining

Education

PhD in economics

Job description

Job ID: 10473237 | Amazon.com Services LLC

The Ads Measurement Science team in the Measurement, Ad Tech, and Data Science (MADS) team of Amazon Ads serves a centralized role developing solutions for a multitude of performance measurement products. We create solutions which measure the comprehensive impact of their ad spend, including sales impacts both online and offline and across timescales, and provide actionable insights that enable our advertisers to optimize their media portfolios. We leverage a host of scientific technologies to accomplish this mission, including Generative AI, classical ML, Causal Inference, Natural Language Processing, and Computer Vision.

We are hiring an Economist on the team to develop the next generation of incrementality measurement products, capturing the effect of advertising in driving sales as well as the effects of measurement tools on advertiser engagement with Amazon. As an Economist on the team, you will lead the design, implementation, and validation of large-scale causal inference methodologies to capture these properties. You will communicate your results with science and business leaders, and partner with other scientists and engineers to carry solutions into production.

Key job responsibilities
  • Leverage deep expertise in causal inference to develop robust, causally grounded ads measurement solutions
  • Disambiguate problems to propose clear evaluation frameworks and success criteria
  • Work autonomously and write high quality technical documents
  • Partner closely with other scientists to deliver large, multi-faceted technical projects
  • Share and publish works with the broader scientific community through meetings and conferences
  • Communicate clearly to both technical and non-technical audiences and leaders
  • Contribute new ideas that shape the direction of the team's work
  • Mentor more junior scientists and participate in the hiring process
Basic Qualifications
  • PhD in economics or equivalent
Preferred Qualifications
  • 2+ years of industry, consulting, government, or academic research experience
  • Experience in data mining (SQL, ETL, data warehouse, etc.) and using databases in a business environment with large-scale, complex datasets
  • Experience in implementing modern machine-learning methods (e.g., boosted regression trees, random forests, neural networks)
  • Experience in any of the following areas of applied economics (multiple areas preferred): reduced-form causal analysis, predictive modeling and causal ML algorithms, forecasting, hazard models, health and insurance economics, education economics, labor economics, and behavioral economics, designing and administering large-scale social science survey
  • Knowledge of and proficiency in the use of Python scripting language
  • Experience in the advertising industry or closely related problems.

Amazon is an equal opportunity employer and does not discriminate on the basis of protected veteran status, disability, or other legally protected status.

Our inclusive culture empowers Amazonians to deliver the best results for our customers. If you have a disability and need a workplace accommodation or adjustment during the application and hiring process, including support for the interview or onboarding process, please visit https://amazon.jobs/content/en/how-we-hire/accommodations for more information. If the country/region you’re applying in isn’t listed, please contact your Recruiting Partner.

The base salary range for this position is listed below. Your Amazon package will include sign-on payments and restricted stock units (RSUs). Final compensation will be determined based on factors including experience, qualifications, and location. Amazon also offers comprehensive benefits including health insurance (medical, dental, vision, prescription, Basic Life & AD&D insurance and option for Supplemental life plans, EAP, Mental Health Support, Medical Advice Line, Flexible Spending Accounts, Adoption and Surrogacy Reimbursement coverage), 401(k) matching, paid time off, and parental leave. Learn more about our benefits at https://amazon.jobs/en/benefits .

USA, NY, New York - 157,300.00 - 212,800.00 USD annually

Amazon is an equal opportunity employer and does not discriminate on the basis of protected veteran status, disability, or other legally protected status.

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