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Satori Analytics

Senior Data Scientist (Marketing Mix)

Posted One Month Ago
Be an Early Applicant
Remote
Hiring Remotely in Greece
Senior level
Remote
Hiring Remotely in Greece
Senior level
Lead marketing-science projects to build and validate Marketing Mix Models and related econometric/time-series/ML solutions, quantify incremental impact, optimize media spend, explain results to stakeholders, and mentor junior colleagues while operationalising reproducible workflows.
The summary above was generated by AI

Are you passionate about AI? 🤖

At Satori Analytics, we aim to change the world one algorithm at a time by bringing clarity to global brands thought Data & AI. From cloud-based ecosystems for fintech to predictive models for airlines, our cutting-edge solutions cover the entire data lifecycle—from ingestion to AI applications.

As a fast-growing scale-up, our team of 100+ tech specialists—including Data Engineers, Data Scientists, and more—delivers innovative analytics solutions across industries like FMCG, retail, manufacturing and FSI. Join us as we lead the data revolution in South-Eastern Europe and beyond!

We are looking for a Senior Data Scientist to join our Data Science team and play a key role in marketing science, marketing effectiveness, and investment optimization projects.

You will work with marketing, media, sales, pricing, promotional, and external market data to help leading organisations understand what drives performance, measure the impact of marketing activities, and make better investment decisions.

This role is well suited to candidates with experience in Marketing Mix Modeling, marketing effectiveness, econometrics, forecasting, commercial analytics, or optimization. Deep expertise in every MMM technique is not required, but you should have the statistical foundation, modelling experience, and business understanding needed to lead complex analytical projects.

What Your Day Might Look Like:

  • Build the models: Develop and enhance Marketing Mix Models to estimate the impact of media, promotions, pricing, seasonality, and other business drivers on performance.
  • Quantify what matters: Apply regression, time-series, econometric, and ML techniques to measure incremental impact — modelling carryover, saturation, diminishing returns, and response curves.
  • Optimise the spend: Develop scenario-planning and optimization approaches to guide media budget allocation and investment decisions.
  • Interrogate the results: Evaluate assumptions, uncertainty, and business plausibility rather than relying on statistical fit alone, using SHAP, diagnostics, and sensitivity analysis to explain the drivers.
  • Tell the story: Translate outputs into clear recommendations on channel performance, ROI, and budget strategy for both technical and non-technical audiences.
  • Partner across the business: Work with Marketing, Commercial, Finance, BI, and Data Engineering to define questions, KPIs, and success criteria, and to operationalise clean, reproducible workflows.
  • Raise the bar: Support less-experienced colleagues and contribute to reusable methodologies and Data Science best practices.

Requirements

Your Superpowers 🚀:

  • Strong professional experience in Data Science, Marketing Science, Econometrics, or Commercial/Advanced Analytics, delivering end-to-end modelling projects with clear business impact.
  • Hands-on experience in one or more of: Marketing Mix Modeling, sales/demand forecasting, pricing & promotions analytics, econometric or time-series modelling, or budget/resource optimization.
  • Solid grounding in regression, statistical inference, hypothesis testing, feature engineering, and model validation — plus working comfortably with trends, seasonality, and lagged effects.
  • A critical eye: able to identify model limitations, challenge assumptions, and judge whether results are both statistically and commercially credible.
  • Strong Python or R and SQL skills (joins, CTEs, window functions), with libraries such as pandas, NumPy, scikit-learn, statsmodels, or SciPy — and explainability tools like SHAP.
  • Fluent in commercial concepts (ROI, ROAS, incremental revenue, margin, market share) and comfortable partnering directly with business-facing teams.
  • Ability to independently structure and lead analytical workstreams, manage priorities, and communicate clearly with senior stakeholders.
  • Experience with Git or another version-control system.

Bonus points for:

  • Direct experience building or enhancing MMMs, and familiarity with adstock, saturation, response curves, baseline decomposition, and incrementality.
  • Constrained mathematical optimization (SciPy Optimize, CVXPY, Pyomo) and MMM frameworks such as Google Meridian, Meta Robyn, or LightweightMMM.
  • Causal inference, experiment design, geo-experiments, or incrementality testing; comfort with both Bayesian and frequentist approaches.
  • Cloud and analytics platforms (Azure, AWS, GCP, Databricks, Microsoft Fabric, Snowflake) and exposure to MLflow, MLOps, or Spark/PySpark.
  • Exposure to Generative AI or AI-assisted analytical workflows.

Benefits

Perks on Perks:

  • Competitive salary and hybrid work model – come hang out in our Athens office or work remotely from anywhere in European economic Area (EU, Switzerland etc.) or UK (up to 6 weeks per year).
  • Training budget to level up your skills from the top tech partners in the market (Microsoft, AWS, Salesforce, Databricks etc.) – whether it’s certifications or courses, we’ve got you covered.
  • Private insurance, top-tier tech gear, and the chance to work with a stellar crew.

Ready to create some data magic with us? Hit that apply button and let’s get started.

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