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Business Intelligence & AI Context Engineer

Business Intelligence & AI Context Engineer

Philippine Batteries Incorporated
  • Posted 6 hours ago
  • Be among the first 10 applicants

Job Description

Key Duties and Responsibilities:

Semantic and metric layer

  • Define metric views, semantic models, KPI logic and business glossaries as the single certified definition of each measure.
  • Create, improve and expand the scope of context and the Ontology for Genie.
  • Prevent conflicting calculations across dashboards, Genie Spaces, reports and AI applications.

Decision products

  • Build and optimize executive dashboards, operating dashboards and self-service analytical products.
  • Create and manage automated, AI-ready dashboards that require no manual refresh or manual reconciliation.
  • Design for the decision being made, not for the data that happens to be available.

Evaluation and trust

  • Establish benchmark question sets, evaluation datasets, accuracy thresholds and usage monitoring for Genie Spaces and natural-language analytics.
  • Test and publish answer accuracy, and remediate where accuracy falls below threshold.
  • Monitor adoption and retire or rebuild products that are not used.

Business partnership

  • Work with Data & AI Translators and business experts to encode definitions, exceptions, decision rules and narrative context.
  • Support user enablement and self-service capability building.

Key Deliverables

  • Certified KPI and metric definitions and the enterprise business glossary.
  • Semantic models and the Genie ontology.
  • Production dashboards and self-service analytical products.
  • Evaluated Genie Spaces with published accuracy benchmarks.
  • Adoption and usage metrics.

Accountability and Success Measures

  • Metric consistency across every consumption channel.
  • Accuracy of natural-language and AI-generated answers within the assigned scope.
  • Analytical usability and decision relevance of delivered products.
  • User adoption of dashboards and self-service tools.
  • Currency of definitions as the business changes.

Working Relationships

  • Internal: Data Engineers; Data & AI Translators; Data Scientists; AI / LLM Engineers; Data Governance Specialist; business owners; BI & Context Engineering Capability Head.
  • External: platform vendor support.

Qualifications.

  • Bachelor's degree in Computer Science, Information Systems, Statistics, Engineering, Business Analytics or a related field.
  • Three or more years in business intelligence, semantic modelling or analytics engineering. Demonstrated ownership of enterprise metric definitions. Experience with natural-language analytics or LLM-based query interfaces is a strong advantage.
  • Preferred: Power BI Data Analyst Associate, Databricks fundamentals. Optional: dbt or analytics engineering certification.

Technical Skills

  • Advanced SQL; dimensional and semantic modelling.
  • Power BI, including semantic models, DAX and performance optimization.
  • Databricks, Unity Catalog metric views and Genie Spaces.
  • Ontology and business-glossary design.
  • Evaluation design for natural-language analytics — benchmark sets, accuracy measurement, regression testing.
  • Visualization and dashboard design principles.
  • Python for evaluation and automation is an advantage.

More Info

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Key Skills

Visualization and dashboard design principles

Evaluation design for natural-language analytics

Ontology and business-glossary design