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Senior Data Analyst

Klivvr · One Kattameya, Cairo, Egypt

Data Science / AI / Machine LearningSenior LevelQuick applyfull-time26 days ago

About The Role

What you'll do

  • Own analytics for one or more business domains (such as Lending, Payments, Risk, Sales, or Growth), acting as the primary analytics partner for stakeholders.
  • Translate ambiguous business questions into clear analytical problems, delivering actionable insights that drive decision-making.
  • Build, maintain, and govern trusted metrics and dashboards in Looker using LookML, ensuring consistent definitions and a reliable single source of truth.
  • Conduct advanced analyses, including funnel diagnostics, cohort analysis, segmentation, churn and activation analysis, and causal inference, to uncover not just what happened, but why.
  • Partner directly with senior stakeholders to scope requests, prioritize work, communicate findings, and confidently present analytical recommendations.
  • Ensure data quality by validating datasets, reconciling discrepancies, and identifying limitations related to data availability or privacy requirements.
  • Contribute to the analytics platform by improving documentation, semantic models, coding standards, and best practices that enable the team to scale.
  • Communicate insights through concise dashboards, presentations, and documentation tailored to different audiences.

To succeed in this role, you'll need to have

  • 5+ years of experience in data analytics, including at least 2 years operating independently in a senior individual contributor capacity.
  • Background in fintech or banking is strongly preferred.
  • Advanced SQL with strong understanding of complex datasets and multi-row relationships.
  • Experience with cloud data warehouses such as BigQuery (preferred), Snowflake, or Redshift.
  • Strong experience building governed BI solutions in Looker/LookML or comparable platforms such as Tableau or Power BI.
  • Experience with dbt or similar data transformation frameworks.
  • Working knowledge of Python or R for analysis and automation.
  • Strong foundation in statistics, experimentation, and causal analysis (A/B testing, cohort analysis, regression, diff-in-diff, regression discontinuity, etc.).
  • Ability to transform ambiguous business questions into well-scoped analytical projects.
  • Strong analytical judgment and methodological rigor.
  • Excellent stakeholder management and communication skills.
  • Commitment to data quality, governance, and consistent metric definitions.
  • Ability to work autonomously and own projects from problem definition through delivery.

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