At a Glance
- Tasks: Build and improve models for player evaluation using high-frequency tracking data.
- Company: Football Radar, a leader in football analytics with a start-up vibe.
- Benefits: Generous holiday, health perks, bonuses, and learning budgets.
- Other info: Collaborative environment with opportunities for career growth and team activities.
- Why this job: Combine your passion for football with data science to make impactful decisions.
- Qualifications: STEM degree, predictive modelling skills, and a love for football.
The predicted salary is between 50000 - 70000 £ per year.
At Football Radar, our mission is to be the world-leading provider of football analytics. For over a decade, we have combined predictive modelling techniques with expert analysis and our proprietary datasets to deliver insights that drive success for our betting clients and football clubs. By combining the agility of a start-up with the stability of an established business, we’ve created an environment where innovation and long-term success go hand in hand.
As a Data Scientist on our Club Services team, you'll work with high-frequency tracking and event data to build and improve the models behind our player evaluation framework. The problems are often difficult with no clear answer, so you'll need to make defensible modelling decisions, quantify your uncertainty, and then make your work robust enough to run in production and be trusted in real recruitment decisions. To achieve this, you will have the freedom to explore and develop your own ideas while working collaboratively with a team of data scientists, developers, and analysts, to combine technical expertise with football knowledge. You will also be a passionate football fan, with an understanding of the current football analytics landscape. You must be a strong communicator, able to translate technical analyses and insights to both technical and non-technical audiences. You will be required to demonstrate strong problem solving skills, with an ability to identify challenges and propose solutions.
You will be based at our London office, at 106 Kensington High Street, London, W8 4SG. While we are open to flexible working hours to help you avoid rush hour, we believe in the value of in-person collaboration and learning opportunities, so we require at least 4 days a week in the office.
Requirements
We are looking for smart, ambitious people who are naturally curious, eager to learn, and enjoy solving challenging problems in a dynamic environment. We are open to candidates from early-career to experienced Data Scientists. The following are the core skills we would expect all candidates to meet:
- A Bachelor’s, Master’s, or PhD in a STEM subject
- Solid understanding of predictive modelling, machine learning, and probability theory
- Familiarity with techniques such as Bayesian modelling, mixed effects models, GLMs, and Neural Networks. While expertise in every area isn't expected, you should have a broad awareness of available techniques and tools, and understand the trade-offs of different approaches
- Ability to communicate complex models and analyses clearly to both technical and non-technical audiences
- Comfort working collaboratively across teams, sharing ideas early, and taking onboard feedback from both technical and football-focused colleagues
- Proficiency in Python for data analysis and modelling
- Experience working with SQL and relational databases
- Interest in football and sports analytics
For senior candidates
More experienced candidates will have the opportunity to take on more responsibility, leading projects, and helping set the direction of our research. We are looking for candidates who can think strategically and make pragmatic decisions about where we should focus our efforts, and what technical approaches we should use to get our modelling ideas onto production. So in addition to the requirements above, this means you also bring:
- 3+ years of experience applying predictive modelling and machine learning in industry, with exposure to football through professional work or substantial personal projects
- Experience working with high volume tracking-data datasets, with a comprehensive understanding of the challenges and possible approaches associated with them
- A practical approach to problem-solving, balancing attention to detail with the ability to deliver MVPs quickly
- Ability to deliver projects independently, making informed and justifiable decisions, while also contributing effectively as part of a team
- Experience taking models from research into production, and deploying them to the cloud
What We Offer
- Half yearly bonus opportunities based on company performance
- 33 days holiday (Including bank holidays)
- Competitive contribution matched pensions
- Health and well-being benefits:
- Private Medical Insurance (including excess coverage)
- Health Cash Plan
- Subsidised gym membership
- Daily subsidised office meals
- Learning and development budgets to invest in your personal growth
- Company and team led engagement activities throughout the year
- Fortnightly five-a-side game amongst colleagues
Club Data Scientist (Junior or Senior) in London employer: Football Radar
Football Radar is an exceptional employer that combines the dynamic environment of a start-up with the stability of a well-established business, making it an ideal place for a Senior Data Platform Engineer to thrive. With a strong focus on employee growth and collaboration, you will have the opportunity to work closely with a small, agile team on real-world football data challenges, while enjoying a culture that values innovation and ownership. Our commitment to providing a supportive work environment, along with access to unique datasets and cutting-edge cloud technologies, ensures that your contributions will be meaningful and impactful.
StudySmarter Expert Advice🤫
We think this is how you could land Club Data Scientist (Junior or Senior) in London
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We think you need these skills to ace Club Data Scientist (Junior or Senior) in London
Some tips for your application 🫡
Show Off Your Projects:In the world of data science, your projects can speak volumes about your skills. Make sure to showcase a few key projects in your CV or portfolio, especially those that highlight your ability to work with data sets, build models, or use relevant tools like Python, R, or SQL. Don’t forget to include links to any GitHub repositories if applicable!
Quantify Your Achievements:Employers love numbers! When drafting your CV, highlight your achievements with quantifiable results. For instance, mention how your data analysis led to a certain percentage increase in efficiency or revenue at a previous job or project. These details can really make your application pop!
Craft a Tailored Cover Letter:For a full-time role at Football Radar, your cover letter should reflect your passion for data science and your excitement about the specific projects or values of the company. Dive into why you’re a good fit, how your skills align with their needs, and any unique perspectives you can bring to the team.
Stand Out with Relevant Courses and Certifications:Although experience talks, relevant courses or certifications can be your ticket to impressing hiring managers at Football Radar. Mention any standout courses you've completed that equipped you with essential skills, such as machine learning certifications or data visualisation courses. This shows your commitment to continuously developing your skills in the field!
How to prepare for a job interview at Football Radar
✨Brush Up on Your Statistics
For a data science role, we need to seriously sharpen our statistics skills. Get ready to tackle technical questions on probability distributions, hypothesis testing, and regression analysis. These are often the bread and butter of data science interviews, so don't just skim over them!
✨Showcase Your Projects
Prepare a killer portfolio showcasing your data science projects. We should include details about the datasets used, the tools and techniques applied, and the impact of your findings. If we can walk them through a particularly challenging project or a cool visualisation that had real-world implications, it’ll really make us stand out!
✨Get Comfortable with Python and R
Most data science positions require us to be proficient in programming languages like Python and R. We should practice common libraries like pandas, NumPy, and scikit-learn, and be ready for live coding exercises or algorithm questions. Showing off our coding chops can really impress the interviewers at Football Radar!
✨Prepare for Case Studies
Expect to encounter real-world case studies during the interview. We might be asked how we’d approach a data problem or analyse a dataset to extract insights. It's essential to think out loud and demonstrate our problem-solving process so that the interviewer can see our logical thinking in action.