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Inetum

Data Scientist

RemoteMexico only
Published
Role
Data Science
Experience
Senior
Employment
Full-time
Company size
Enterprise
Salary not disclosed
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Open to MX only. Set where you work from to check your eligibility.

No BS summary

Buscan un Senior Data Scientist con más de 5 años en ciencia de datos, análisis estadístico o investigación aplicada. Debe dominar Python, SQL, librerías ML/estadística, trabajo con datos a escala y estándares de ingeniería de software. Requiere base estadística sólida, proyectos end-to-end documentables y colaboración con equipos de ML/Data Engineering.

Core skills

PythonScikit-LearnSQL

Required skills

XGBoostLightGBMPandasPolarsStatsmodelsSciPyTensorFlow/PyTorchPySparkGCSAzure Blob StorageGitMLflow

What you'll do

  • Frame complex problems as modeling problems
  • Execute rigorous research cycles
  • Deliver reproducible solutions that can be integrated by engineering teams
  • Operate in close collaboration with an ML Engineering team
  • Work with software engineering standards, not just analysis standards
  • Apply experimental design and hypothesis testing to business problems
  • Distinguish causality from correlation and apply appropriate techniques
  • Validate models beyond accuracy, including business metrics, bias analysis, and subgroup behavior
  • Produce organized and modular Python code
  • Document models in a structured way: what it solves, with what data, with what limitations
  • Handle secure credentials, data versioning, and project structure under team standards
  • Use generative AI tools responsibly as assistants and review and validate their output
  • Evaluate when agent systems or LLMs are the right tool and when they are not
  • Adopt engineering standards defined by the team from the start of any project

What they require

  • Senior Data Scientist with a solid statistical background and practical experience in data science projects in business environments
  • Advanced mastery of Python as the primary and sole development language
  • Solid knowledge of data science and ML libraries: Scikit-Learn, XGBoost, LightGBM, Pandas, Polars, Statsmodels, SciPy
  • Experience with deep learning models (TensorFlow or PyTorch) when the problem justifies it
  • Ability to work with data at scale: advanced SQL, PySpark for exploration and transformation
  • Access to and handling of data in cloud environments (GCS, Azure Blob Storage)
  • Experimental design and hypothesis testing applied to business problems
  • Understanding of causality: not just correlation but the ability to distinguish and apply appropriate techniques
  • Robust model validation: beyond accuracy, business metrics, bias analysis, and subgroup behavior
  • Professional use of Git as part of the usual workflow, not as a formality at delivery time
  • Organized and modular Python code: the candidate must produce deliverable code, not just exploration notebooks
  • Familiarity with experiment tracking tools (MLflow or equivalent) for experiment traceability
  • Ability to document models in a structured way: what it solves, with what data, with what limitations
  • Experience working under team standards: secure credential handling, data versioning, project structure
  • Responsible use of generative AI tools as assistants: with the critical ability to review and validate what they produce
  • Judgment to evaluate when agent systems or LLMs are the right tool and when they are not
  • The selection process includes a practical technical evaluation and review of the candidate’s previous work
  • Reasoning ability and judgment will be valued over code production speed
  • We are not looking for profiles who use tools without understanding them: we are looking for candidates who can justify their technical and statistical decisions
  • The candidate will work under engineering standards defined by the team — willingness and ability to adopt them from the start of any project is expected
  • More than 5 years in data science, statistical analysis, or applied research roles
  • Documentable end-to-end projects: from problem definition to delivery of a validated model
  • Experience working with engineering teams (ML Engineers, Data Engineers) in agile environments
  • Work history in real code repositories (a shareable portfolio will be valued)
  • Master’s or Doctoral degree in: Mathematics, Statistics, Actuarial Science, Physics, Computer Science, or related fields
  • Preferred: Experience in academic or applied research is a differentiator

Benefits

  • Programas de formación continua y certificaciones
  • Acceso a plataformas de aprendizaje y desarrollo profesional
  • Cultura de innovación y colaboración
  • Programas de bienestar físico y emocional
  • Oportunidades de crecimiento en proyectos internacionales
  • Reconocimiento y recompensas por desempeño
  • Sueldo base
  • Prestaciones superiores a las de la ley
  • Seguro de vida
  • Seguro de Gastos Médicos Mayores
  • Vales de despensa
  • Esquema 100% nómina

Inetum est un leader européen des services numériques. Le groupe accompagne les organisations dans leurs enjeux de transformation digitale via le conseil, la gestion des infrastructures et applications, l'implémentation de progiciels et son activité d'éditeur de logiciels.

IT ServicesEnterpriseinetum.com/
Salary not disclosed