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Data Analytics Engineer

The Phoenix Group®

On-siteNew York City, NYentryPosted 2d ago

Job description

Key Responsibilities

  • Design, develop, and optimize data models, datasets, dashboards, and reports supporting monthly and quarterly fund performance and operational reporting cycles.

  • Transform raw source data into high-quality, reusable, and structured datasets for analytics and business intelligence purposes.

  • Utilize dimensional modeling principles to create and maintain fact and dimension tables, star schemas, and business metrics aligned with fund valuation and reporting needs.

  • Write, test, and maintain complex SQL queries, stored procedures, and data transformations involving joins, aggregations, window functions, and subqueries across multiple systems.

  • Develop analytics solutions using BI platforms such as Power BI, Sigma Computing, and Snowflake, including dashboard and report creation.

  • Collaborate with Data Engineers to understand source system architecture, establish reliable data pipelines, resolve data-quality issues, and support end-to-end data workflows.

  • Partner with Business Analysts and stakeholders, including fund managers and portfolio leads, to translate business requirements into effective data models, KPIs, and report deliverables.

  • Validate data accuracy, reconcile discrepancies, and troubleshoot data issues across multiple systems and models.

  • Implement and execute data quality tests, unit tests, and validation procedures to ensure the integrity of analytics outputs.

  • Document data lineage, business logic, metrics definitions, and reporting processes thoroughly.

  • Support deployment, monitoring, and maintenance of analytics solutions, ensuring continued performance and accuracy.

  • Participate in code reviews, contribute to best practices, and help develop standards for analytics engineering within the organization.

Core Qualifications & Requirements

  • 1 to 3 years of relevant experience in data analytics, data engineering, or reporting roles within finance, asset management, or private equity.

  • Strong proficiency in SQL, including joins, aggregations, subqueries, window functions, and CTEs.

  • Solid understanding of dimensional data modeling concepts such as fact/dimension tables, star schemas, and data relationships.

  • Hands-on experience developing dashboards and reports using Power BI, Sigma Computing, Snowflake, or similar BI tools.

  • Familiarity with data transformation frameworks like dbt or equivalent.

  • Knowledge of source system integration, data pipeline development, and data quality assurance practices.

  • Experience working with cloud data platforms such as Snowflake and AWS.

  • Ability to collaborate effectively with Data Engineers on data pipelines and source system issues.

  • Strong attention to detail, data validation, and troubleshooting skills.

  • Excellent written and verbal communication, capable of translating technical concepts for stakeholders.

  • Bachelor’s degree in Computer Science, Data Analytics, Finance, or related field, or equivalent practical experience.