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Senior Data Scientist

Job in Miami, Miami-Dade County, Florida, 33222, USA
Listing for: Royal Caribbean Group
Full Time position
Listed on 2026-06-06
Job specializations:
  • IT/Tech
    AI Engineer, Data Scientist, Machine Learning/ ML Engineer, Data Analyst
Salary/Wage Range or Industry Benchmark: 100000 - 125000 USD Yearly USD 100000.00 125000.00 YEAR
Job Description & How to Apply Below

Journey with us! Combine your career goals and sense of adventure by joining our exciting team of employees. Royal Caribbean Group offers a competitive compensation and benefits package and excellent career development opportunities, each enabling unique ways to explore the world.

The Royal Caribbean Group’s AI & Analytics Team is seeking a full-time Senior Data Scientist reporting to the Senior Manager, Data Science. The position is onsite and based in Miami, Florida.

Position Summary

We are seeking a Sr. Data Scientist to lead complex data science work from business framing through production operations, making model decisions understandable, measurable, and adopted across the Group. This role emphasizes data science ownership of delivered business value: framing the right problem, building and validating ML/optimization/GenAI solutions, partnering on deployment, monitoring performance, and driving adoption in production. The ideal candidate combines statistical and machine learning depth with practical business judgment, strong stakeholder partnership, and the ability to convert analytical work into measurable outcomes rather than isolated prototypes.

Essential Duties and Responsibilities
  • Problem Framing & Value:
    Frame high-impact business problems for senior independent model ownership and cross‑functional influence into measurable data science opportunities with clear decision owners, baseline metrics, adoption paths, and expected value tied to multi‑process improvements in revenue, cost, service, capacity, personalization, or operational decision quality.
  • Predictive Modeling:
    Develop forecasting, propensity, classification, and ranking models using Python, scikit-learn, XGBoost, Light

    GBM, Cat Boost, and Databricks feature workflows to support production decisions.
  • Prescriptive Decisioning:
    Build recommendation, simulation, and optimization solutions using MILP, heuristics, dynamic programming, or scenario modeling to improve operational and commercial decisions.
  • GenAI Solutions:
    Design GenAI workflows using GPT‑class models, Azure AI Foundry, RAG, embeddings, prompt engineering, and evaluation routines where natural‑language or agentic capabilities improve business productivity.
  • Statistical Experimentation:
    Design and evaluate A/B tests, quasi‑experiments, causal analyses, bootstrap methods, and non‑parametric tests to determine whether model or process changes create measurable lift.
  • Explainability & Trust:
    Apply SHAP, sensitivity analysis, model diagnostics, error analysis, and stakeholder‑ready explanations so users understand model behavior, limits, and decision implications.
  • Production Deployment:
    Partner with AI Engineering to deploy models and analytical applications through Databricks, Azure ML, MLflow, APIs, or containerized services while retaining accountability for business value and model behavior.
  • Production Operations:
    Monitor accuracy, drift, bias, adoption, latency, cost, and business KPIs; trigger retraining, recalibration, or process changes when performance or value realization degrades.
  • Stakeholder Partnership:
    Partner with business, product, operations, AI Engineering, and data engineering teams to convert model outputs into decisions, workflows, incentives, and measurable adoption.
Qualifications, Knowledge and Skills
  • Education:

    Bachelor’s or Master’s degree in Data Science, Statistics, Computer Science, Operations Research, Engineering, Economics, or a related quantitative field, or equivalent practical experience.
  • Experience:

    Demonstrated experience appropriate to senior scope delivering ML, optimization, experimentation, or GenAI solutions that moved beyond analysis into production use or business decisioning.
  • ML Tooling:
    Hands‑on experience with Python, scikit‑learn, XGBoost, Light

    GBM, Cat Boost, PyTorch or Tensor Flow where appropriate, and model evaluation workflows for production‑grade use cases.
  • Optimization:
    Experience with MILP solvers, simulation, scenario planning, dynamic programming, heuristics, or prescriptive analytics methods applied to real business decisions.
  • GenAI Platforms:
    Experience with Azure AI Foundry, GPT‑class models, RAG, embeddings, prompt…
Position Requirements
10+ Years work experience
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