jobs in Wonderliv Sdn Bhd

Internship Data Analyst Intern (E-commerce) Jobs, Salary up to MYR 1,000 in Wonderliv Selangor - Maukerja

Internship Data Analyst Intern (E-commerce)

Wonderliv Sdn Bhd

MYR800 - MYR1,000 Per Month
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Working Location

  • Subang Jaya Selangor Malaysia

Job Description

Requirements

Requirements

  • Studying or graduated in Data Analytics, Data Science, Statistics, Data Engineering, Computer Science, Business, or related field — but open to other degrees if you have a keen interest in IT/AI and have built vibe-coded projects (using tools like Claude, Codex, ChatGPT, etc.)
  • Sound analytical thinking — able to interpret data, spot patterns, and draw logical conclusions
  • Some experience with BigQuery and Power BI
  • Comfortable using Claude and Codex for analysis, reporting, and light coding tasks
  • Comfortable communicating with non-technical stakeholders to gather requirements and confirm data accuracy
  • Detail-oriented, comfortable with recurring monthly deadlines

Nice to Have

  • Exposure to Python (pandas) for data manipulation
  • Understanding of e-commerce metrics (AOV, CAC, retention, etc.)
  • Basic SQL beyond BigQuery basics (joins, CTEs, window functions)
  • Familiarity with data pipelines, working with API calls, and MCP (Model Context Protocol)

What We're Looking For

  • Curious — willing to ask “why” behind the numbers, not just pull them
  • Can work independently once shown a reporting template
  • Clear communicator — can explain numbers to stakeholders
  • Comfortable coordinating across teams, not just working solo with data
  • Willing and eager to learn new things — genuine interest in growing technical skills matters more than having them all upfront

Responsibilities

Core Responsibilities

  • Prepare and maintain monthly sales/performance reports across all e-commerce platforms (Shopify, Lazada, Shopee, and any others in scope)
  • Build and maintain dashboards (Google Sheets, Power BI, or similar)
  • Pull and structure data from BigQuery / Google Cloud data warehouse
  • Track key metrics: revenue, conversion, inventory levels, campaign performance
  • Gather reporting requirements from stakeholders and translate them into report/dashboard specs
  • Liaise with multiple stakeholders (e.g. marketing, ops, management) to verify and reconcile numbers before finalizing reports
  • Use AI tools (Claude, Codex) to speed up reporting — summarizing trends, drafting insights, automating repetitive data cleaning and scripting
  • Flag anomalies or data quality issues before they hit final reports
  • Exposure to adjacent work as needed: light data engineering (pipeline/ETL support), QA testing of internal tools, and basic software engineering tasks

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