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eBay
eBay

Buy, sell, and discover.

Applied Researcher 2 at eBay

RoleMachine Learning
LevelMid Level
LocationToronto
WorkOn-site
TypeFull-time
Posted1 day ago
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About the role

At e Bay, we're more than a global ecommerce leader — we’re changing the way the world shops and sells. Our platform empowers millions of buyers and sellers in more than 190 markets around the world. We’re committed to pushing boundaries and leaving our mark as we reinvent the future of ecommerce for enthusiasts.

Our customers are our compass, authenticity thrives, bold ideas are welcome, and everyone can bring their unique selves to work — every day. We're in this together, sustaining the future of our customers, our company, and our planet.

Join a team of passionate thinkers, innovators, and dreamers — and help us connect people and build communities to create economic opportunity for all.

About the team and the role:

The Search Ranking and Monetization team sits at the core of e Bay’s marketplace, powering the search and advertising experiences that connect millions of buyers and sellers every day. As the largest contributor to e Bay’s advertising program, the team focuses on redefining e-commerce advertising through cutting-edge machine learning, large-scale experimentation, and a strong focus on customer value.

We are looking for applied researchers who are energized by the scale and technical complexity of online advertising and search. In this role, you will design and deploy advanced models that shape how listings are ranked, how ads are served, and how buyers discover the inventory they love. You will partner closely with product, engineering, and analytics teams, and you will have opportunities to share your work internally and in external forums and conferences. This role sits within the Search Ranking and Monetization organization and directly impacts the quality, relevance, and monetization of e Bay’s search experience.

What you will accomplish:

  • Deliver scientifically robust solutions that meaningfully improve key buyer and seller outcomes, such as search relevance, engagement, conversion, and marketplace efficiency.

  • Design, build, and iterate on machine learning models and data pipelines that power ranking, recommendation, targeting, and advertising products in e Bay search.

  • Partner with cross-functional teams to define problem statements, validate hypotheses, run online experiments, and translate research into scalable, production-ready systems.

  • Promote and standardize scientific methodologies, experimentation practices, and evaluation frameworks across Search Ranking and Monetization and adjacent teams.

  • Share technical and research contributions through internal forums and external conferences, helping position e Bay as a leader in e-commerce advertising and large-scale machine learning.

  • Continuously deepen your expertise in large-scale ML, big data technologies, and online experimentation, while mentoring and learning from peers in a collaborative, supportive environment.

What you will bring:

  • MS or PhD in Computer Science, Statistics, Mathematics, or a related quantitative field, or equivalent practical experience in applied machine learning.

  • 1–3 years of relevant industry experience with a PhD, or 3–5 years with an MS, in areas such as online advertising, ranking, recommendation systems, targeting systems, fraud detection, or related domains.

  • Hands-on experience applying machine learning techniques (for example, classification, regression, ranking, recommendation) in large-scale, real-world systems, including designing and evaluating models in production.

  • Proficiency with big data tools and technologies such as Hadoop, SQL, and Spark, and comfort working with large, complex datasets to build reliable data pipelines.

  • Strong programming skills in Python or R and in at least one of Java, Scala, or C/C++, with a track record of building high-quality, maintainable, production-grade software.

  • A record of scientific impact demonstrated by 2 or more related publications in reputable conferences or journals, and the ability to communicate research findings clearly to both technical and non-technical audiences.

Additional Details

The base pay range for this position is expected in the range below:

C**$142,400** - C**$190,100**

Base pay offered may vary depending on multiple individualized factors, including location, skills, and experience. The total compensation package for this position may also include other elements, including a target bonus and restricted stock units (as applicable) in addition to a full range of medical, financial, and/or other benefits (including RRSP eligibility, various paid time off benefits, such as PTO and parental leave). Details of participation in these benefit plans will be provided if an employee receives an offer of employment.

This job posting relates to an existing vacancy within e Bay.

eBay is an equal opportunity employer. All qualified applicants will receive consideration for employment without regard to race, color, religion, national origin, sex, sexual orientation, gender identity, and disability, or other legally protected status. If you have a need that requires accommodation, please contact us at talent@ebay.com. We will make every effort to respond to your request for accommodation as soon as possible. View our accessibility statement to learn more about eBay's commitment to ensuring digital accessibility.

We use cookies to enhance your experience and may use AI tools for administrative tasks in the hiring process. To learn how we handle your personal data and use AI responsibly, please visit our Talent Privacy Notice, Privacy Center and AI Hiring Guidelines.

Required skills

Machine learning

Ranking models

Online advertising

Experimentation

Search relevance

Python

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About eBay

eBay

eBay

Public

eBay Inc. is an American multinational e-commerce company based in San Jose, California, that allows users to buy or view items via retail sales through online marketplaces and websites in 190 markets worldwide.

10,001+

Employees

San Jose

Headquarters

$28.1B

Valuation

Reviews

10 reviews

3.8

10 reviews

Work-life balance

3.2

Compensation

2.8

Culture

4.1

Career

3.0

Management

2.7

72%

Recommend to a friend

Pros

Supportive team culture and colleagues

Good benefits and health coverage

Flexible work arrangements

Cons

Management issues and lack of direction

Limited career advancement opportunities

Compensation below expectations

Salary Ranges

2,735 data points

Junior/L3

Mid/L4

Senior/L5

Junior/L3 · Data Science Analyst 2

1 reports

$174,200

total per year

Base

$134,000

Stock

-

Bonus

-

$174,200

$174,200

Interview experience

4 interviews

Difficulty

3.0

/ 5

Duration

14-28 weeks

Experience

Positive 0%

Neutral 75%

Negative 25%

Interview process

1

Application Review

2

Recruiter Screen

3

Online Assessment

4

Technical Interview

5

Team Matching

6

Offer

Common questions

Coding/Algorithm

Technical Knowledge

Behavioral/STAR

Past Experience