Data Scientist

Depop - London

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Company Description

Depop is the community-powered circular fashion marketplace where anyone can buy, sell and discover desirable secondhand fashion. With a community of over 35 million users, Depop is on a mission to make fashion circular, redefining fashion consumption. Founded in 2011, the company is headquartered in London, with offices in New York and Manchester, and in 2021 became a wholly-owned subsidiary of Etsy. Find out more at www.depop.com 

Our mission is to make fashion circular and to create an inclusive environment where everyone is welcome, no matter who they are or where they’re from. Just as our platform connects people globally, we believe our workplace should reflect the diversity of the communities we serve. We thrive on the power of different perspectives and experiences, knowing they drive innovation and bring us closer to our users. We’re proud to be an equal opportunity employer, providing employment opportunities without regard to age, ethnicity, religion or belief, gender identity, sex, sexual orientation, disability, pregnancy or maternity, marriage and civil partnership, or any other protected status. We’re continuously evolving our recruitment processes to ensure fairness and are open to accommodating any needs you might have.

If, due to a disability, you need adjustments to complete the application, please let us know by sending an email with your name, the role to which you would like to apply, and the type of support you need to complete the application to adjustments@depop.com. For any other non-disability related questions, please reach out to our Talent Partners.

The Role

Depop is looking for a dedicated Data Scientist to join our Listings & Inventory team in the UK. You will work alongside a cross functional team of Product Managers, Designers, Backend & Frontend Engineers and other Data Scientists playing a key role in building innovative machine learning models to power Depop’s selling experience. 

Responsibilities:

  • Research, design and deliver machine learning solutions to solve problems within the fashion resale space:

  • Working with and fine tuning (multimodal) large language models; Textual understanding using natural language processing algorithms / Image feature extraction using computer vision models

  • Understand requirements from various stakeholders across the business, designing machine learning solutions to solve business problems, such as: How can we capitalise on recent advances in generative AI to make the selling process as easy as possible and how can we extract information from image and text inputs to generate rich features used in our recommender and search engines?

  • Set up and conduct large-scale experiments to test hypotheses and drive product development

  • Keep up to date with research, contribute to Machine Learning groups, and apply new techniques for (multimodal) LLMs, NLP, computer vision, etc.

  • Participate in team ceremonies (follow the agile cadence, technical whiteboarding sessions, product road mapping, etc)

  • Report and present technical findings to technical and non-technical audiences

Requirements:

  • Experience working as a Data Scientist, with a track record of delivering models to solve industry-scale problems

  • Solid understanding of machine learning concepts, familiarity working with frameworks such as Transformers, PyTorch or TensorFlow

  • Proficiency in Python, with the ability to write production-grade code and a good understanding of data engineering & MLOps

  • Collaborative and humble team player with an ability to work with cross-functional teams, including technical and non-technical stakeholders

  • Passion for learning new skills and staying up-to-date with ML algorithms

Bonus:

  • Experience working with NLP, Image classifiers and Transformers

  • Experience with deep learning & large language models

  • Experience with experiment design and conducting A/B tests

  • Experience with Databricks and PySpark

  • Experience working with AWS or another cloud platform (GCP/Azure)

Additional Information

Health + Mental Wellbeing

  • PMI and cash plan healthcare access with Bupa

  • Subsidised counselling and coaching with Self Space

  • Cycle to Work scheme with options from Evans or the Green Commute Initiative

  • Employee Assistance Programme (EAP) for 24/7 confidential support

  • Mental Health First Aiders across the business for support and signposting


Work/Life Balance:

  • 25 days annual leave with option to carry over up to 5 days

  • 1 company-wide day off per quarter

  • Impact hours: Up to 2 days additional paid leave per year for volunteering

  • Fully paid 4 week sabbatical after completion of 5 years of consecutive service with Depop, to give you a chance to recharge or do something you love.

  • Flexible Working: MyMode hybrid-working model with Flex, Office Based, and Remote options *role dependant

  • All offices are dog-friendly

  • Ability to work abroad for 4 weeks per year in UK tax treaty countries

Family Life:

  • 18 weeks of paid parental leave for full-time regular employees

  • IVF leave, shared parental leave, and paid emergency parent/carer leave

Learn + Grow:

  • Budgets for conferences, learning subscriptions, and more

  • Mentorship and programmes to upskill employees

Your Future:

  • Life Insurance (financial compensation of 3x your salary)

  • Pension matching up to 6% of qualifying earnings

Depop Extras:

  • Employees enjoy free shipping on their Depop sales within the UK.

  • Special milestones are celebrated with gifts and rewards!

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* Salary range is an estimate based on our AI, ML, Data Science Salary Index 💰

Job stats:  4  0  0
Category: Data Science Jobs

Tags: A/B testing Agile AWS Azure Computer Vision Databricks Deep Learning Engineering GCP Generative AI LLMs Machine Learning ML models MLOps NLP PySpark Python PyTorch Research TensorFlow Transformers

Perks/benefits: Career development Conferences Flex hours Flex vacation Insurance Paid sabbatical Parental leave Pet friendly Salary bonus

Region: Europe
Country: United Kingdom

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