Manager / Senior Manager of Data Science
Germany (Remote) ; Ireland (Remote); Netherlands (Remote) ; Portugal (Remote) ; United Kingdom (Remote)
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Typeform
Build beautiful, interactive forms â get more responses. No coding needed. Templates for quizzes, research, feedback, lead generation, and more. Sign up FREE.Who we are
Typeform is a refreshingly different form builder. We help over 150,000 businesses collect the data they need with forms, surveys, and quizzes that people enjoy. Designed to look striking and feel effortless to fill out, Typeform drives 500 million responses every yearâand integrates with essential tools like Slack, Zapier, and Hubspot.
About the Team
At Typeform, the Data & Insights team drives strategic decision-making and product innovation by combining world-class data infrastructure, advanced analytics, and applied machine learning. Our Data Science & ML Engineering function powers AI-first experiences across our platformâfrom recommendation systems to form intelligenceâwhile also building scalable infrastructure, experimentation frameworks, and customer insights that fuel our PLG motion.
About the Role
Weâre looking for a Manager or Senior Manager of Data Science, and weâre flexible on level for the right candidate. If youâre a senior manager with deep leadership experienceâor a manager ready for that next big step, weâd love to connect.
As the leader of Data Science & Machine Learning Engineering, youâll lead a team of 4 ICs across data science and ML engineering while remaining hands-on with technical strategy and delivery. Youâll be responsible for defining the teamâs roadmap, maturing our AI capabilities, and partnering closely with Product, Engineering, and Analytics to bring intelligent features to life. Your remit will span everything from experimentation design to ML model deployment, all while fostering a high-performance, collaborative team environment.
What Youâll Do
Strategic Leadership & Team Enablement (40-50%)
- Lead, mentor, and develop a team of Data Scientists and ML Engineersâfostering a growth mindset, shared ownership, and deep technical curiosity.
- Define and drive the roadmap for applied ML and AI initiatives across core product areas, balancing quick wins with foundational investments.
- Partner cross-functionally with Product, Engineering, and Analytics to identify and prioritize high-impact opportunities for ML and experimentation.
- Collaborate with Data Engineering and Analytics Engineering to ensure scalable data pipelines, model monitoring, and deployment infrastructure.
- Champion a culture of reproducibility, documentation, and scientific rigor.
Technical Execution & IC Contribution (40%)
- Contribute to modeling strategy, experimentation frameworks, and architecture decisionsâreviewing code, shaping methodology, and guiding best practices.
- Support the development and deployment of machine learning models that power intelligent product features and internal automations.
- Guide experimentation design and causal inference approaches to validate product impact and customer behavior hypotheses.
- Partner with stakeholders to translate ambiguous business problems into data science opportunities with clear success criteria.
Org-Wide Impact & Thought Leadership (10-20%)
- Help define our long-term AI/ML strategy and tooling roadmapâincluding model observability, feature stores, and governance practices.
- Represent the Data Science & ML Engineering function in strategic planning discussions, technical design reviews, and cross-functional working groups.
- Advocate for ethical and responsible AI practices, ensuring fairness, transparency, and explainability in our ML systems.
- Support hiring, onboarding, and career development for technical talent within the team.
What You Bring
- 6+ years of experience in data science, machine learning, or a related field, with at least 1â2 years in a leadership or technical mentorship role.
- Proven track record of delivering ML-powered product features or decision-support systems in a production environment.
- Strong foundation in statistics, experimentation, and causal inferenceâplus deep experience with model development and lifecycle management.
- Proficiency in Python (and libraries such as pandas, scikit-learn, PyTorch, or TensorFlow) and SQL; familiarity with ML orchestration tools and cloud platforms.
- Excellent communication skillsâable to translate technical work into business outcomes and influence stakeholders at all levels.
Extra awesome:
- Experience managing hybrid teams that include both Data Scientists and ML Engineers
- Exposure to modern MLOps tooling (e.g. MLflow, Feature Store, SageMaker, Vertex AI)
- Familiarity with unstructured data modeling (e.g. NLP, embeddings, LLMs) and GenAI product patterns
- Experience working in product-led or B2B SaaS environments
- You bring a coaching mindset and love growing talent as much as shipping great models
*Typeform drives hundreds of millions of interactions each year, enabling conversational, human-centered experiences across the globe. We move as one team, empowering our collective efforts by valuing each individualâs unique perspective. This fosters strong bonds grounded in respect, transparency, and trust. We champion our diverse customer base by anticipating their needs and addressing their challenges with priority. Committed to excellence, we hold high expectations for ourselves and each other, continuously striving to deliver exceptional results.
We are proud to be an equal-opportunity employer. We celebrate diversity and stand firmly against discrimination and harassment of any kindâwhether based on race, color, ancestry, religion, sex, national origin, sexual orientation, age, citizenship, marital status, disability, gender identity or expression, or veteran status. Everyone is welcome here.
* Salary range is an estimate based on our AI, ML, Data Science Salary Index đ°
Tags: Architecture Causal inference Data pipelines Engineering Generative AI HubSpot LLMs Machine Learning MLFlow ML models MLOps Model deployment NLP Pandas Pipelines Python PyTorch Responsible AI SageMaker Scikit-learn SQL Statistics TensorFlow Unstructured data Vertex AI
Perks/benefits: Career development Flex hours Transparency
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