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Senior Data Scientist

  • Office
  • 6+ years

Salary

Not stated

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Description

About the role: What's in the Box

The Growth Alliance powers the company ’s marketing engine, from media investment and in-channel optimization, to the conversion funnel, to how and when we communicate with customers. As a Senior Data Scientist , you will design and ship statistical and machine learning models that turn data from experiments, campaigns, and customer behavior into decisions that directly move the business: how we spend our marketing budget, how we convert visitors into customers, and how we personalize every touchpoint along the way.

You’ll join one of several teams within the alliance, spanning marketing measurement and attribution, channel optimisation, funnel optimisation and decisioning on customer communications and messaging. Across all of these topics, the through line is the same: rigorous modeling, close collaboration with engineering and marketing stakeholders, and a bias toward shipping models that work in production, not just in a notebook.

To succeed in this role, you should be a curious, pragmatic problem solver who relentlessly prioritizes based on impact, is comfortable with statistical uncertainty, and can translate a fuzzy business question into a concrete, testable model.

At HelloTech, flexibility and cross-functional collaboration are core to how we work. While this role is aligned to a specific Alliance, strong candidates may also be considered for opportunities across different teams or projects.

Responsibilities

  • Design, build, and take ownership of statistical and machine learning models, from data collection through to production, closely aligning the approach with non-technical stakeholders.
  • Collaborate within cross-functional teams (engineering, product, marketing) to translate business objectives into concrete, data-driven strategies.
  • Experimentation: design tests, define success metrics and guardrails, and interpret results while accounting for statistical uncertainty, noise, and bias.
  • Continuously iterate and refine your technical approach, monitor model performance, data reliability, and drift once in production.
  • Retrieve, manipulate, and analyze large, heterogeneous datasets, and build the data pipelines your models depend on.
  • Think beyond the immediate ask to find new ways to improve the data products delivered to stakeholders.
  • As a senior member of the team, jump in to help solve problems as they arise, and support and coach more junior data scientists.
  • What you’ll bring: The Ingredients
  • Proven track record of scientific work through a Bachelor’s, Master’s, or PhD in statistics, physics, economics, mathematics, data science, or a related quantitative field.
  • 3+ years of professional experience as a (senior) data scientist or in a related quantitative role, ideally in e-commerce, marketing, or a comparably high-traffic, consumer-facing environment.
  • Strong marketing and/or growth domain knowledge, with experience applying statistical models such as regressors and classifiers, and interpreting experiment results under real-world uncertainty.
  • Fluency in Python and its scientific stack (NumPy, Pandas, Scikit-learn, Matplotlib); comfortable retrieving and analyzing data with SQL. Experience with Databricks/Spark is a plus.
  • Familiarity with software engineering practices and tools (Git, Docker, AWS or similar cloud environments).
  • Comfortable using recent Gen AI tools (e.g. Claude Code) to design and build solutions in a structured and pragmatic manner.
  • A critical thinker and creative problem solver who is comfortable proposing and prioritizing multiple solutions based on effort and likely impact.
  • A collaborative team player with exceptional communication skills, able to work with stakeholders from different backgrounds in an international environment.
  • Nice to have (domain specific), if you find yourself in one of the below, it’s a huge plus!
  • Measurement & attribution: experience with media mix models, attribution modeling, or incrementality measurement; Bayesian forecasting and estimating model uncertainty.
  • Search or Social channel optimization: experience with the Google/Meta ecosystem or other paid channels, forecasting algorithms, portfolio optimization, or Vector Autoregression.
  • Conversion & personalization: experience building decisioning or recommendation models that run in production behind high-traffic conversion funnels; customer segmentation and behavioral data.
  • Messaging & send decisioning: direct experience with reinforcement learning or contextual bandits (e.g. Thompson Sampling, epsilon-greedy), off-policy/counterfactual evaluation, or CRM and marketing decisioning use cases.

Benefits

  • Global collaboration at scale: Collaborate with experienced engineers and product partners across HelloTech’s international teams, in a culture of active knowledge sharing.
  • Technology with real-world impact: Build and operate modern systems at global scale, supporting 6+ millions of customers and complex supply chain operations.
  • Technical/Product/Design leadership: Drive best practices and influence architecture/design, quality, and ways of working in an autonomous, product-led setup.
  • End-to-end development/delivery: Drive decisions from problem definition to production, improving systems and enabling long-term scalability.
  • Are you the missing ingredient? If this sounds like a tasty opportunity, we’d be excited to hear from you. We aim to review your profile and respond within 5 business days.
  • DATA

Where you’d work

From the office

About the company

Company hidden

  • Industry: E-commerce

Office in Berlin, Germany

Your chances

Still hiring, not crowded yet, and you'd be among the first.

  • 16 checks run
  • 7 good signs
  • 0 red flags

Still hiring?

11 checks

Actively hiring

In its favour3

  • Still on the company's own careers site, checked 1 h agoModerate evidence
  • Found in the last 48 hours, before the big job boardsModerate evidence
  • The company opened 14 roles and closed 36 in the last 2 weeks: hiring is movingModerate evidence

How crowded?

5 checks

Low

In its favour4

  • In its Early Window: not on the big job boards yetStrong evidence
  • In the office in Berlin: only people nearby can take itSlight evidence
  • Senior level: far fewer people qualifySlight evidence
1 moreFewer
  • Asks for scikit-learn, which fewer than 1% of open roles doSlight evidence

Fits Me

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  • Your field
  • Level
  • Stack
  • Work model
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  • Must-haves
Details11 facts · Role, Location, Compensation, Company
Tech stack
  • Python
  • SQL
  • AWS
  • Docker
  • Spark
  • Databricks
  • LLMs
  • scikit-learn
Seniority
Senior
Industry
E-commerce
Specialty
Data Science
Region
Europe
Pay period
Annual
Show 5 more factsShow less

Role

Category
Data & Analytics
Specialty
Data Science
Seniority
Senior
Experience
3+ years
Tech stack
  • Python
  • SQL
  • AWS
  • Docker
  • Spark
  • Databricks
  • LLMs
  • scikit-learn

Location

Work model
Office
Region
Europe
Office
  • Berlin, Germany

Compensation

Salary
Salary by agreement
Pay period
Annual

Company

Industry
E-commerce

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