Data Scientist in London

Data Scientist in London

London Full-Time 36000 - 60000 £ / year (est.) No home office possible
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At a Glance

  • Tasks: Develop AI solutions and predictive models to drive business impact across diverse asset classes.
  • Company: Join a growing team at a leading alternative investment firm with $65B in assets.
  • Benefits: Collaborative culture, opportunity for real influence, and a chance to work on high-impact projects.
  • Why this job: Make a difference by translating complex data into actionable insights that drive decision-making.
  • Qualifications: Degree in STEM, strong Python skills, and experience in machine learning and statistics.
  • Other info: Dynamic environment with opportunities for continuous learning and career growth.

The predicted salary is between 36000 - 60000 £ per year.

As a Data Scientist on the AI team at Cerberus, you’ll work on high-impact projects that combine the pace of a startup with the reach of a global investment platform. Our team partners directly with internal investment desks as well as portfolio companies across industries to deliver machine learning solutions that unlock value and accelerate decision-making.

Your work will range from developing and validating robust predictive models for pricing and valuation across diverse asset classes to dynamically optimizing prices under changing market conditions. You’ll be expected to translate complex data into actionable insights and ensure your solutions are not only technically sound but also adopted and delivering measurable business value, supporting deal team members and portfolio company executives.

We’re looking for data scientists who are passionate about impact—those who bring deep statistical knowledge, thrive in fast-paced environments, and want to see their models deployed, used, and making a difference.

What you will do:

  • Build and deliver AI solutions: Design and implement advanced models and systems as both an individual contributor and as part of cross-functional teams.
  • Drive impact through execution: Apply a hypothesis-driven approach to design solutions, collaborate with technical teams, and deliver results that create measurable business value.
  • Work in an agile, fast-paced environment: Rapidly iterate and adapt to changing priorities, using creativity and pragmatism to maximize outcomes.
  • Leverage modern tools and methods: Develop innovative solutions using contemporary platforms, languages, and frameworks, and package IP into reusable components.
  • Communicate insights effectively: Translate complex technical concepts into clear, compelling narratives that drive understanding and action across technical and non-technical audiences.
  • Build trust through delivery: Establish credibility by delivering high-quality solutions, challenging assumptions constructively, and iterating quickly in response to feedback.
  • Develop broad technical capability: Work across the full data science lifecycle, continuously learning and applying new technologies.

Sample project you will work on:

  • Real estate portfolio valuation: Work on developing advanced valuation models for real estate portfolios using internal and external data sources. This includes building predictive models with uncertainty estimates, improving model performance through rigorous evaluation, and creating data pipelines to support modelling and analytics.
  • Price optimization & forecasting for goods: Develop machine learning models to forecast demand and optimize pricing strategies for goods sold by a portfolio company. You’ll build predictive models that incorporate seasonality and competitive pricing data, while quantifying uncertainty and maintaining model explainability to support robust, transparent decision-making.

Your Experience:

We’re a small, high-impact team with a broad remit and diverse technical backgrounds. We don’t expect any single candidate to check every box below - if your experience overlaps strongly with what we do and you’re excited to apply your skills in a fast-moving, real-world environment, we’d love to hear from you.

  • Strong technical foundation: Degree in a STEM field (or equivalent experience) with hands-on expertise in at least two of applied statistics, machine learning, forecasting, NLP, or optimization. Experience with uncertainty quantification, model evaluation, and statistical inference is highly valued.
  • Python expertise: Skilled in building data pipelines and ML models using modern libraries across multiple domains.
  • Data science stack: NumPy, pandas / polars, scikit-learn, XGBoost, LightGBM.
  • Deep learning: PyTorch, JAX.
  • Statistical programming: NumPyro, PyMC.
  • Data skills: Proficient in SQL, with the ability to write efficient, maintainable queries and manage data pipelines for analytics and modelling workflows.
  • Model development & deployment: Familiarity with deploying models into production environments, collaborating with engineering teams, and using tools like MLflow or Weights & Biases for experiment tracking and reproducibility. Proof of work in cloud environments, especially MS Azure, is a plus.
  • Research mindset with business impact: Ability to translate complex problems into tractable modelling approaches. Strong problem-solving skills, intellectual curiosity, and a pragmatic approach to delivering solutions that drive measurable business value.
  • Collaboration and Communication: Demonstrated experience working in collaborative development environments using tools like Git and Azure DevOps. Comfortable contributing to shared codebases, participating in code reviews, and managing branches and CI/CD workflows. Proven ability to work cross-functionally with data scientists, engineers, and non-technical stakeholders to translate business needs into technical solutions and ensure successful delivery and adoption.

About Us:

We are a new, but growing team of AI specialists- data scientists, software engineers, and technology strategists - working to transform how an alternative investment firm with $65B in assets under management leverages technology and data. Our remit is broad, spanning investment operations, portfolio companies, and internal systems, giving the team the opportunity to shape the way the firm approaches analytics, automation, and decision-making.

We operate with the creativity and agility of a small team, tackling diverse, high-impact challenges across the firm. While we are embedded within a global investment platform, we maintain a collaborative, innovative culture where our AI talent can experiment, learn, and have real influence on business outcomes.

Data Scientist in London employer: Cerberus Capital Management

At Cerberus, we pride ourselves on being an exceptional employer that fosters a collaborative and innovative work culture, where data scientists can thrive in a fast-paced environment while making a tangible impact. Our commitment to employee growth is evident through continuous learning opportunities and the chance to work on high-impact projects that shape the future of investment analytics. Located within a global investment platform, our team enjoys the agility of a startup combined with the resources of a large firm, ensuring that your contributions are valued and have real business significance.
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Contact Detail:

Cerberus Capital Management Recruiting Team

StudySmarter Expert Advice 🤫

We think this is how you could land Data Scientist in London

✨Tip Number 1

Network like a pro! Reach out to people in the industry, attend meetups, and connect with fellow data enthusiasts on LinkedIn. You never know who might have the inside scoop on job openings or can refer you directly.

✨Tip Number 2

Show off your skills! Create a portfolio showcasing your projects, models, and any cool data visualisations you've done. This is your chance to demonstrate your expertise and passion for data science beyond just a CV.

✨Tip Number 3

Prepare for interviews by practising common data science questions and case studies. Get comfortable explaining your thought process and how you approach problem-solving. Remember, they want to see how you think!

✨Tip Number 4

Apply through our website! We love seeing candidates who are genuinely interested in joining our team. Tailor your application to highlight how your skills align with our mission and the impact you want to make.

We think you need these skills to ace Data Scientist in London

Applied Statistics
Machine Learning
Forecasting
Natural Language Processing (NLP)
Optimisation
Uncertainty Quantification
Model Evaluation
Statistical Inference
Python
Data Pipelines
SQL
Model Development and Deployment
Collaboration
Communication
Agile Methodologies

Some tips for your application 🫡

Show Your Passion: Let us see your enthusiasm for data science! Share specific examples of projects or experiences that highlight your passion for making an impact through data. We love candidates who are excited about their work and eager to contribute.

Tailor Your Application: Make sure to customise your CV and cover letter to align with the job description. Highlight relevant skills and experiences that match what we’re looking for, especially in areas like machine learning and statistical analysis. This shows us you’ve done your homework!

Be Clear and Concise: When writing your application, keep it straightforward. Use clear language to explain your technical skills and how they relate to the role. We appreciate candidates who can communicate complex ideas simply, as this is key in our collaborative environment.

Apply Through Our Website: We encourage you to apply directly through our website. It’s the best way for us to receive your application and ensures you’re considered for the role. Plus, it gives you a chance to explore more about our team and culture!

How to prepare for a job interview at Cerberus Capital Management

✨Know Your Data Science Stuff

Make sure you brush up on your technical skills, especially in applied statistics and machine learning. Be ready to discuss your experience with Python libraries like NumPy and scikit-learn, and have examples of your work handy to showcase your expertise.

✨Showcase Your Problem-Solving Skills

Prepare to talk about how you've tackled complex problems in the past. Think of specific projects where you translated data into actionable insights, and be ready to explain your thought process and the impact your solutions had on the business.

✨Communicate Clearly

Practice explaining technical concepts in simple terms. You’ll need to convey your ideas to both technical and non-technical audiences, so focus on crafting clear narratives that highlight the value of your work and how it aligns with the company's goals.

✨Be Agile and Adaptable

Demonstrate your ability to thrive in a fast-paced environment. Share examples of how you've quickly adapted to changing priorities or iterated on your work based on feedback. This will show that you're not just technically skilled but also flexible and ready to drive impact.

Data Scientist in London
Cerberus Capital Management
Location: London

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