Responsibilites

  • Collect, clean, and organize data from different sources.

  • Perform exploratory data analysis to identify trends, patterns, and data quality issues.

  • Write basic SQL queries to extract and transform data for analysis.

  • Prepare datasets for dashboards, reports, and machine learning experiments.

  • Help build and evaluate simple statistical or machine learning models under guidance.

  • Create clear charts, summaries, and documentation to communicate findings.

  • Automate repetitive data preparation or reporting tasks using Python where appropriate.

  • Document assumptions, data definitions, and analysis steps for review and reuse.

Requirement

  • Currently pursuing a degree or diploma in Data Science, Computer Science, Statistics, Mathematics, Engineering, Business Analytics, or a related field.

  • Basic knowledge of Python and SQL, with willingness to apply them in a business setting.

  • Familiarity with data cleaning, exploratory analysis, and basic statistics.

  • Comfortable working with spreadsheets or structured datasets.

  • Good attention to detail when checking data accuracy and assumptions.

  • Able to explain findings clearly and ask questions when requirements or data are unclear.

  • Curious, self-motivated, and keen to learn from feedback.

Preferred Skills

  • Exposure to Python libraries such as pandas, NumPy, scikit-learn, matplotlib, or similar tools.

  • Basic understanding for MongoDB and PostgreSql.

  • Basic understanding of machine learning concepts such as regression, classification, clustering, or model evaluation.

  • Familiarity with data visualization tools such as Power BI, Tableau, or Python visualization libraries. Mostly will use Python to generate the dashboard.

  • Basic knowledge of Git or version control.

  • Interest in applying data science to business, customer, network, operations, or digital use cases.

What You’ll Gain

  • Hands-on exposure to real-world data science and analytics projects.

  • Practical experience using Python and SQL in a professional environment.

  • Experience working with data quality checks, exploratory analysis, and business datasets.

  • Exposure to how data insights are translated into business recommendations.

  • Guidance from experienced team members and opportunities to build applied data work.

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