Senior Machine Learning Scientist (ABU)
Booking.com
senior
Location
Amsterdam, Netherlands
Work Type
Onsite
Seniority
senior
Posted
July 4, 2026
Total Compensation
€175,000
Yearly Savings (Comfortable)
€87,000
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Job Description
- As a Senior Machine Learning Scientist, you will design, build, and deploy uplift models and causal inference systems that allocate promotional spend across Booking.com’s accommodation marketplace
- The role combines causal methodology, neural network architecture design, and production ML — with your work validated through large-scale A/B experiments
- There are opportunities to publish applied research at top venues when the work contributes novel methodology
- Design and deploy uplift models that estimate heterogeneous treatment effects, optimising incremental return on investment under budget constraints
- Design and execute causal inference methodologies; including observational debiasing (IPW, doubly robust estimation), sensitivity analysis, and interference-aware evaluation to close the gap between offline metrics and online impact
- Advance the team’s neural network architectures for uplift modeling on tabular data (attention mechanisms, multi-head designs, self-supervised pretraining), balancing model expressiveness with production latency requirements
- Research marketplace interference and cannibalization; building frameworks to measure and correct for demand shifting when partial treatment is applied across competing properties
- Develop offline evaluation methods that reliably predict online performance, accounting for biases introduced by non-stationary treatment policies and interference effects
- Own models end-to-end; from research through A/B experimentation to production calibration
- Collaborate cross-functionally with ML engineers on pipeline and serving design, with data scientists on feature engineering, and with product and business stakeholders on spend strategy and ROI trade-offs
- Actively coach and mentor less experienced team members, setting technical direction and providing guidance on causal modeling best practices
Benefits
- Health insurance
- Free access to Headspace for you and your loved ones
- Global Employee Assistance Program
- Meditation and Breastfeeding rooms at the office
- Booking Cares - 2 days per year to volunteer and learn
- Life insurance
- Disability insurance
- Pension plan
- Annual paid time off
- Parental leave - 22 weeks
- Grandparent leave - 10 days
- Care leave - 10 days
- Bereavement leave - up to 4 weeks
- Anniversary leave
- Working from Home Furniture and Ergonomic Support
- Working from Abroad - up to 20 days per year
- Discounts & Wallet credits to spend on our products
- Upgrade to Booking.com Genius Level 3
- Friends & Family Booking.com discount vouchers
- Free access to online learning platforms
- Development and mentorship programs to support career growth
- Access to trainings and workshops
- Team development opportunities
- Local discount programs
- Game rooms in offices
- On-site meals, coffee and snacks including vegan options- Advanced knowledge and experience in Causal Inference, Uplift Modeling, or Treatment Effect Estimation. Experience with heterogeneous treatment effects, interference / spillover effects, or policy learning is highly valued
- Strong proficiency in Python and modern ML frameworks (e.g., TensorFlow, PyTorch, LightGBM, XGBoost)
- Solid understanding of experimental design, A/B testing, and statistical methodology — including awareness of SUTVA violations, selection bias, and observational study limitations
- Relevant professional or academic experience applying Machine Learning to business problems (typically MSc + 4 years, or PhD + 2 years)
- MSc or PhD (or equivalent experience) in a quantitative field such as Computer Science, Statistics, Economics, Econometrics, Operations Research, Mathematics, or Physics
- Proven track record designing and executing end-to-end R&D plans, and generating measurable impact through large-scale ML model development. Evidence such as peer-reviewed publications, patents, or open-source contributions is a plus
- Excellent English communication skills, both written and verbal. Ability to communicate complex causal reasoning clearly to both technical and non-technical audiences
- Experience with neural network design for structured/tabular data (embeddings, attention, multi-task architectures) is a strong plus
- Experience working with large-scale data systems and production ML pipelines (Spark, Airflow, or similar)
- Experience collaborating cross-functionally with developers, analysts, product managers, and other scientists to deliver ML-powered products
- Successfully driving technical initiatives and cross-team collaboration while communicating with stakeholders at all levels
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