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Senior Data Scientist - Customer Onboarding Risk

50000-65000 EUR Annual
  1. Analytics
  2. Tallinn

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Company Description

Wise is a global technology company, building the best way to move and manage the world’s money.
Min fees. Max ease. Full speed.

Whether people and businesses are sending money to another country, spending abroad, or making and receiving international payments, Wise is on a mission to make their lives easier and save them money.

As part of our team, you will be helping us create an entirely new network for the world's money.
For everyone, everywhere.

More about our mission and what we offer.


Job Description

As a Senior Data Scientist on our Customer Onboarding Risk team, you will leverage your expertise in data science to innovate and deploy models that enhance our detection capabilities across various risk vectors. Your work will directly influence our ability to safeguard our customers and Wise against malicious actors while maintaining exceptional user experience. You will collaborate closely with cross-functional teams, including engineering, product, and compliance.
 

Here's how you'll be contributing:

  • Lead the development and deployment of advanced machine learning models to enhance our detection of fraudulent account creation and abuse patterns across different Wise markets.
  • Analyze large volumes of data to identify trends, patterns, and anomalies associated with potential fraudulent behavior during customer lifecycle.
  • Design and implement experiments to evaluate the effectiveness of fraud detection systems and continuously improve their performance.
  • Collaborate with analysts, risk teams and engineers to translate business and regulatory requirements into actionable data insights and solutions.
  • Develop robust data pipelines, algorithms, and tools to support real-time detection and response to fraudulent customer activity.
  • Stay informed about the latest advancements in data science, machine learning, and fraud prevention techniques to ensure state-of-the-art capabilities in the customer onboarding domain.
  • Mentor and guide junior data scientists, fostering a culture of collaboration and continuous learning within the team.

Qualifications

 

  • Proven experience in a data science role, bonus if experience is related to fraud detection, anti-money laundering, or fintech related domains;
  • Strong proficiency in machine learning frameworks and programming languages such as Python, R, or similar.
  • Experience working with large datasets and data processing technologies (e.g., Hadoop, Spark, SQL).
  • Familiarity with anomaly detection, supervised and unsupervised learning methods, and real-time data analysis.
  • Demonstrated ability to work collaboratively in cross-functional teams and effectively communicate complex technical concepts to non-technical stakeholders.
  • A proactive, problem-solving mindset with a passion for protecting users from criminal activities.
  • You have a solid knowledge of Python, and are able to make and justify design decisions in your code. You know how to use Git to collaborate with others (e.g. opening Pull Requests on GitHub) and are able to review code. Ability to read through code, especially Java. Demonstrable experience collaborating with engineering on services;
  • You have experience working with compliance in assuring effectiveness of controls;
  • You are familiar with a range of model types, and know when and why to use gradient boosting, neural networks, regression, autoencoders, clustering or a blend of these; 
  • Experience with statistical analysis and good presentation skills to drive insight into action;
  • A strong product mindset with the ability to work independently in a cross-functional and cross-team environment;
  • Good communication skills and ability to get the point across to non-technical individuals;
  • Strong problem solving skills with the ability to help refine problem statements and figure out how to solve them.

Additional Information

Relocation support available.

For everyone, everywhere. We're people building money without borders  — without judgement or prejudice, too. We believe teams are strongest when they are diverse, equitable and inclusive.

We're proud to have a truly international team, and we celebrate our differences.
Inclusive teams help us live our values and make sure every Wiser feels respected, empowered to contribute towards our mission and able to progress in their careers.

If you want to find out more about what it's like to work at Wise visit Wise.Jobs.

Keep up to date with life at Wise by following us on LinkedIn and Instagram.

  1. Tallinn
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