DAddario & Company

Data Analytics Engineer

DAddario & Company$90K — $120K *
Information Technology
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • 3+ years of hands-on experience in a Data Engineer or Analytics Engineer role.
  • Experience with production-grade data pipelines and analytics data models.
  • Proficient in Python, PySpark, and SQL.
  • Bachelor's degree in Computer Science, Engineering, or a related field; or equivalent experience.
  • Preferred experience with Microsoft Fabric or Azure data tools.
  • Experience with DataOps best practices and frameworks like dbt is a plus.
  • Understanding of data governance and quality frameworks.

Responsibilities

  • Design, implement, and maintain high-performance ELT/ETL data pipelines.
  • Connect new data sources into a centralized data platform.
  • Transform raw data into structured dimensional models for analysis.
  • Build semantic models and standardized metrics in Power BI and Microsoft Fabric.
  • Implement automated testing and validation for data accuracy.
  • Collaborate with analysts to translate business needs into data products.
  • Contribute to improving coding, documentation, and DataOps standards.

Benefits

  • Conditional on organizational policy and culture, potential for hybrid work arrangements.
  • Opportunity to work with a passionate team and expand professional data skills.
  • Chance to engage in meaningful work that impacts data-driven decision making across the organization.
Full Job Description
Overview

The Business Intelligence team  is looking for a hands-on Data Analytics Engineer to help build, transform, and optimize D’Addario’s global data infrastructure. In this role, you’ll design and maintain production-grade data pipelines while modeling the clean, well-tested, and documented datasets that power reporting and self-service analytics across the company. You’ll work closely with the Global Director of BI and our analysts to turn raw data into reliable, business-ready data products. 

 

This is an ideal opportunity for an engineer who thrives at bringing data into order, enjoys solving complex data challenges, and is passionate about enabling organizational data intelligence. 

Responsibilities
  • Build & Optimize Pipelines: Design, implement, and maintain robust, high-performance ELT/ETL data pipelines within Microsoft Fabric and our broader data environment. 
  • Data Integration: Connect and harmonize new data sources—including ERP, e-commerce platforms, and external APIs—into a centralized data platform. 
  • Analytics Data Modeling: Transform raw data into clean, well-structured dimensional models, data marts, and reusable datasets (star schemas) that are analysis-ready for reporting and self-service BI. 
  • Semantic Layer & Metrics: Build and maintain semantic models and standardized metric definitions in Power BI and Microsoft Fabric so the business works from a single, trusted source of truth. 
  • Data Quality & Testing: Implement automated testing, validation, and monitoring to ensure pipelines and datasets are accurate, reliable, and well-documented. 
  • Collaboration: Partner with analysts and stakeholders across Sales, Marketing, Operations, and Product to translate business requirements into reliable data products. 
  • Continuous Improvement: Follow and help improve team standards for coding, documentation, version control, and DataOps across our data engineering and analytics workflows. 

 

Qualifications

 

  • 3+ years of hands-on experience as a Data Engineer, Analytics Engineer, or equivalent 
  • Experience building and maintaining production-grade data pipelines and analytics data models 
  • Proficiency in Python, PySpark, and SQL 
  • Bachelor's degree in Computer Science, Engineering, Data Science, or related field (or equivalent professional experience) 
  • Preferred experience with Microsoft Fabric, Azure Synapse, or Azure Data Lake 
  • Preferred experience implementing DataOps best practices and building transformation models with dbt or similar frameworks 
  • Familiarity with API integrations and third-party data ingestion 
  • Knowledge of data governance and data quality frameworks 
  • Musician or passion for music a plus 

 

Knowledge, skills, & abilities: 

 

  • Strong programming in Python and PySpark for data processing and transformation 
  • Advanced SQL and dimensional data modeling (e.g., star schema / Kimball) for analytical performance and scalability 
  • Experience building and maintaining ELT/ETL pipelines and transformation layers, including automated testing and validation of analysis-ready datasets 
  • Strong understanding of cloud data platforms (Azure preferred) 
  • Excellent communication skills with the ability to simplify complex technical concepts 
  • Familiarity with semantic modeling and BI tools such as Power BI and Microsoft Fabric 
  • Self-directed, highly organized, and comfortable operating in a fast-paced, evolving environment 
  • Passion for innovation and leveraging data to create business impact 

 

 

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About DAddario & Company

D'Addario is a manufacturer of musical instrument strings and accessories, primarily for guitars but also many other fretted and orchestral instruments. The company also produces and distributes other musical accessories under other brands. The company was founded in 1974 by James D'Addario, originally producing guitar strings. The company is still family-owned and operated, with Jim's son, John D'Addario III, serving as CEO. The company is headquartered in Farmingdale, New York, and has manufacturing facilities in New York, California, and Texas, as well as distribution centers in Canada, England, Germany, France, and China.
Learn more about DAddario & Company
Size
1,500 employees
Industry
Net Income
$10 million
Founded
1974
5 Year Trend
+5%
Revenue
$200 million

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