Data Scientist (Fresh Graduate)

Xiaomi Technology

Singapore

On-site

SGD 90,000 - 140,000

Full time

38 hours ago
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Job summary

Xiaomi Technology is seeking a data scientist to support the development, prototyping, and validation of predictive analytics and machine learning models in a fast-paced environment.

You will conduct statistical analyses on large structured and unstructured datasets, translate model outcomes into intuitive visualizations, and collaborate with product, operations, and engineering teams to standardize metrics across regions.

Qualifications

  • Degree in Data Science, Statistics, Computer Science, Mathematics, or related highly quantitative discipline.
  • Strong foundation in statistics, probability, regression analysis and basic machine learning concepts.
  • Hands-on proficiency in Python (Pandas, NumPy, Scikit-learn) and SQL.
  • Familiarity with data engineering concepts, ETL workflows, and working with large-scale datasets is preferred.
  • Exposure to modern data visualization and BI platforms (Power BI, Tableau, Quick BI) to convey data insights effectively.
  • Support product, operations, and engineering teams in defining data science requirements and standardizing key business metrics across regional markets.

Responsibilities

  • Support the development, prototyping, and validation of predictive analytics and machine learning models under the guidance of senior data scientists.
  • Conduct statistical analysis and exploratory data analysis on large structured and unstructured datasets to validate hypotheses, identify patterns, and uncover business opportunities.
  • Develop optimized SQL queries and Python programs to extract, clean, feature-engineer, and prepare data pipelines for advanced modeling and analysis.
  • Translate complex model outcomes and statistical findings into intuitive data visualizations and self-service analytical tools to support cross-functional decision-making.
  • Assist in designing and automating data quality monitoring, alerting workflows, and metrics tracking to ensure high-fidelity inputs for analytical models.
  • Partner with product, operations, and engineering teams to define data science project requirements, standardizing core performance metrics across regional markets.

Skills

Statistical analysis
Exploratory data analysis
Data visualization
Cross-functional collaboration

Education

Degree in Data Science, Statistics, Computer Science, Mathematics, or related highly quantitative discipline

Tools

Python
SQL
Pandas
NumPy
Scikit-learn
Power BI
Tableau

Job description

  • Support the development, prototyping, and validation of predictive analytics and machine learning models under the guidance of senior data scientists.
  • Conduct statistical analysis and exploratory data analysis on large structured and unstructured datasets to validate hypotheses, identify patterns, and uncover business opportunities.
  • Develop optimized SQL queries and Python programs to extract, clean, feature-engineer, and prepare data pipelines for advanced modeling and analysis.
  • Translate complex model outcomes and statistical findings into intuitive data visualizations and self-service analytical tools to support cross-functional decision-making.
  • Assist in designing and automating data quality monitoring, alerting workflows, and metrics tracking to ensure high-fidelity inputs for analytical models.
  • Partner with product, operations, and engineering teams to define data science project requirements, standardizing core performance metrics across regional markets.
Requirements:
  • Degree in Data Science, Statistics, Computer Science, Mathematics, or a related highly quantitative discipline.
  • Strong foundation in statistics, probability, regression analysis and basic machine learning concepts.
  • Hands‑on proficiency in Python (specifically libraries such as Pandas, NumPy, Scikit-learn) and SQL is required.
  • Familiarity with data engineering concepts, ETL workflows, and working with large‑scale datasets is preferred.
  • Exposure to modern data visualization and BI platforms (e.g., Power BI, Tableau, Quick BI) to convey data insights effectively.
  • Support product, operations, and engineering teams in defining data science requirements and standardizing key business metrics across regional markets.
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