Data Scientist - Kaggle Grandmaster

YO IT CONSULTING
5 days ago

Role details

Contract type
Contract
Employment type
Full-time (> 32 hours)
Working hours
Shift work
Languages
English
Experience level
Intermediate

Job location

Remote

Tech stack

Artificial Intelligence
Data analysis
Big Data
Google BigQuery
Statistical Hypothesis Testing
Python
Machine Learning
NumPy
SQL Databases
Model-Driven Development
Feature Engineering
Large Language Models
Snowflake
Spark
Kaggle
Pandas
Scikit Learn

Job description

We are partnering with a leading AI research lab to hire a highly skilled Data Scientist with a Kaggle Grandmaster profile.

In this role, you will transform complex datasets into actionable insights, high-performing models, and scalable analytical workflows. You will collaborate closely with researchers and engineers to design rigorous experiments, build advanced statistical and machine learning models, and develop data-driven frameworks that support product and research decisions., * Analyze large, complex datasets to uncover patterns and generate actionable insights

  • Build predictive models and ML pipelines across:
  • Tabular data
  • Time-series data
  • NLP
  • Multimodal datasets
  • Design and implement validation strategies, experimental frameworks, and analytical methodologies
  • Develop automated data workflows, feature pipelines, and reproducible research environments
  • Conduct exploratory data analysis (EDA), hypothesis testing, and model-driven investigations
  • Translate analytical results into clear recommendations for engineering, product, and leadership teams
  • Collaborate with ML engineers to productionize models and ensure reliable data workflows at scale
  • Present findings via dashboards, structured reports, and documentation

Requirements

  • Kaggle Competitions Grandmaster or comparable achievement (top-tier rankings, multiple medals, or exceptional competition performance)
  • 3-5+ years of experience in data science or applied analytics
  • Strong proficiency in Python and data tools (Pandas, NumPy, Polars, scikit-learn, etc.)
  • Experience building ML models end-to-end (feature engineering, training, evaluation, deployment)
  • Strong understanding of statistical methods, experiment design, and causal/quasi-experimental analysis
  • Familiarity with modern data stacks (SQL, distributed datasets, dashboards, experiment tracking tools)
  • Excellent communication skills and ability to present analytical insights clearly, * Contributions across multiple Kaggle tracks (Notebooks, Datasets, Discussions, Code)
  • Experience in AI labs, fintech, product analytics, or ML-driven organizations
  • Knowledge of LLMs, embeddings, and modern ML techniques for text, image, and multimodal data
  • Experience with big data ecosystems (Spark, Ray, Snowflake, BigQuery, etc.)
  • Familiarity with Bayesian methods or probabilistic programming frameworks

Benefits & conditions

  • Work on cutting-edge AI research workflows
  • Collaborate with world-class data scientists and ML engineers
  • Solve high-impact, real-world data science challenges
  • Experiment with advanced modeling strategies and competition-grade validation techniques
  • Flexible engagement options ideal for Kaggle-level problem solvers

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