Data Scientist - Tech Lead

Promtior

Buenos Aires

Híbrido

ARS 44.994.000 - 74.991.000

Jornada completa

14 días+
Generador de candidaturas

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Ventajas ofrecidas por este puesto de trabajo

20 paid days off per year
Hybrid work model
Flex Days: monthly team activities
Professional development courses
Internal clubs

Descripción de la vacante

Promtior is seeking a Data Engineer to join our Engineering team in a hybrid setup. You will lead a team of data scientists, shaping technical direction and ensuring production-ready models with robust monitoring and reproducibility.

You will choose appropriate ML approaches, including GenAI, and collaborate with data engineering, product, and stakeholders to deliver measurable business impact. The role emphasizes experimentation design, drift detection, and a strong focus on producing reliable,

Formación

  • 6+ years as Data Scientist with team leadership experience.
  • Models shipped to production with post-deployment ownership.
  • Strong Python and SQL skills across large datasets.

Responsabilidades

  • Lead data science team, define technical direction and quality standards.
  • Own end-to-end lifecycle from problem framing to deployment and monitoring.
  • Design experimentation frameworks (A/B testing, causal inference).
  • Define reproducibility, code quality, model documentation, and performance monitoring standards.
  • Decide on ML approaches (classical, statistical, or LLM-based) with clear trade-offs.
  • Collaborate with data engineering, product, and business stakeholders; mentor the team.

Conocimientos

Team leadership
Python
SQL
Statistical methods
A/B testing
ML lifecycle
LLMs / GenAI
Spark / Databricks
Cloud platforms
Stakeholder communication
Technical standards

Educación

Postgraduate studies in Statistics/Math/CS

Herramientas

MLflow
Feature stores
Model registries

Descripción del empleo

About Promtior

Promtior is at the forefront of the Agentic AI revolution, delivering cutting-edge solutions that transform businesses across industries — bridging technology and people to turn AI into a real competitive advantage. Since 2023, we've helped organizations boost operational efficiency through tailored Agentic AI solutions, from discovery and development to full implementation, across three core lines: AI Product Delivery (predictive analytics, intelligent automation, AI-driven chatbots, image processing), AI Department as a Service (LATAM-based teams that integrate directly with our clients' teams), and AI Adoption Consulting (helping companies find and act on AI opportunities across their business).

We're a team held together by genuine relationships, constant exchange, and shared learning. We believe innovation happens when people feel included and collaborate with purpose, and we aim for professional growth to go hand in hand with personal well-being.

About the Role

We're looking for a Data Engineer to join our Engineering team.

Key Responsibilities

You will lead a team of data scientists, defining technical direction, modeling approaches, and quality standards across the team's work. You will own the full lifecycle of data science initiatives, from framing an ambiguous business problem into a measurable one, through model design and validation, to deployment and monitoring in production. You will design and oversee experimentation frameworks, including A/B testing and causal inference, to make sure decisions are backed by sound methodology rather than intuition. You will define standards for reproducibility, code quality, model documentation, and performance monitoring, including drift detection and retraining strategies. You will decide when a problem calls for classical machine learning, statistical modeling, or LLM-based approaches, and justify those trade-offs to both technical and business audiences. You will partner closely with data engineering, product, and business stakeholders to secure data availability and translate results into decisions, and you will mentor the team through code reviews, technical guidance, and career development.

Required Experience
  • 6+ years of experience as a Data Scientist, including at least 2 years leading, mentoring, or setting technical direction for a team.
  • Proven track record of taking models to production and owning them post-deployment, not only in research or notebook environments.
  • Strong development skills in Python (pandas, scikit-learn, PyTorch or TensorFlow) and SQL over large datasets.
  • Solid statistical foundation: experimentation design, A/B testing, hypothesis testing, and causal inference.
  • Experience with the full ML lifecycle: feature engineering, validation, monitoring, drift detection, and retraining.
  • Hands‑on experience applying LLMs or GenAI to real production use cases, with clear criteria for when they are and aren't the right tool.
  • Experience working with distributed processing and large volumes of data (Spark / Databricks or equivalent).
  • Experience in cloud environments (AWS, GCP, or Azure).
  • Ability to communicate methodology, results, and uncertainty to non-technical stakeholders.
  • Experience defining technical standards and reviewing the work of other data scientists.
  • Advanced English Level.
Especially Valued
  • Experience with MLOps tooling (MLflow, feature stores, model registries).
  • Experience in payments, fintech, fraud, or risk, working with high-volume transactional data.
  • Experience with time series forecasting, anomaly detection, or recommender systems.
  • Postgraduate studies in Statistics, Mathematics, Computer Science, or a related field.
  • Experience building or hiring a data science team.
  • Official certifications (Databricks, AWS, Azure, GCP, or equivalent).
  • Contributions to open source, publications, or technical community involvement.
Benefits
  • 20 paid days off per year.
  • Hybrid work model.
  • Flex Days: monthly team activities.
  • Professional development courses.
  • Internal clubs (soccer, padel, running, cinema).
  • Hybrid work arrangement.
Location

Montevideo, Uruguay.

Buenos Aires, Córdoba, Corrientes or Chaco, Argentina.

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