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Data Engineer III

Job in Northern, Floyd County, Kentucky, USA
Listing for: Hard Rock International
Full Time position
Listed on 2026-09-09
Job specializations:
  • IT/Tech
    Data Engineering, Data Warehousing, Cloud Computing: Infrastructure & Operations
Salary/Wage Range or Industry Benchmark: 130000 - 180000 USD Yearly USD 130000.00 180000.00 YEAR
Job Description & How to Apply Below
Location: Northern

Our team members are the key to our company’s success, and their health and well-being, as well as that of their families, is very important to us.

We offer a comprehensive benefits package that allows our team members stay healthy, plan for their future and maintain a healthy work-life balance. Benefits may vary with employment status. To see our fill list of Team Member Benefits please visit our career site:

Job Description

We are seeking a highly skilled Senior Snowflake Data Engineer to design, develop, and optimize enterprise data solutions that support analytics, reporting, and business intelligence initiatives across the organization. This role will be responsible for building scalable data pipelines, implementing Snowflake best practices, and ensuring the reliability, performance, and security of critical data assets. The ideal candidate is a hands‑on data engineering professional with deep expertise in Snowflake, cloud-based data platforms, and modern ELT/ETL architectures.

This individual will collaborate closely with business stakeholders, data analysts, data scientists, and application development teams to deliver scalable and high‑performing data solutions that enable data‑driven decision—making.

Required Experience
  • 7+ years of professional experience in Data Engineering, Data Warehousing, or related disciplines
  • 5+ years of hands‑on experience with Snowflake in enterprise environments
  • Proven expertise designing, developing, and supporting large-scale data platforms and modern analytics architectures
  • Experience working in cloud-based environments and supporting mission‑critical business systems
Key Responsibilities Data Engineering & Pipeline Development
  • Design, develop, and maintain scalable, high-performance data pipelines and ELT/ETL processes utilizing Snowflake and modern data engineering frameworks.
  • Build and support enterprise Data Lakes and Data Warehouses.
  • Develop robust data integration solutions that ensure data quality, consistency, and reliability.
  • Optimize data movement, transformations, and processing workflows across multiple systems and platforms.
  • Implement automated and reusable data engineering patterns to improve efficiency and maintainability.
Snowflake Platform Engineering
  • Architect, develop, and maintain Snowflake-based data solutions.
  • Design and optimize Snowflake data models to support analytics, reporting, and operational workloads.
  • Configure and manage Snowflake Tasks, Streams, Virtual Warehouses, RBAC, and data-sharing capabilities.
  • Monitor and optimize Snowflake performance, storage utilization, and query efficiency.
  • Implement cost optimization strategies to maximize platform value while maintaining performance standards.
Key Snowflake Technologies
  • Snowflake SQL
  • Streams
  • Tasks
  • Virtual Warehouses
  • Role-Based Access Control (RBAC)
  • Data Sharing
  • Clustering Keys
  • Performance Tuning
  • Cost Optimization
Data Architecture & Modeling

Design scalable and maintainable data models that support business intelligence, analytics, and operational reporting requirements. Apply dimensional modeling and data warehousing best practices. Establish standards and governance frameworks for enterprise data assets. Contribute to long‑term data architecture strategy and platform evolution.

Cloud Data Solutions

Build and support cloud-based data platforms leveraging Azure and/or AWS. Integrate cloud-native services into enterprise data workflows. Collaborate with cloud engineering teams to ensure scalability, security, and reliability of data environments. Optimize cloud resource utilization and operational costs.

Data Quality & Reliability

Monitor the health and performance of data pipelines and platform services. Troubleshoot and resolve issues related to data accuracy, completeness, latency, and reliability. Implement data validation, testing, and monitoring processes. Support root cause analysis and continuous improvement initiatives.

Collaboration & Stakeholder Engagement

Partner with data analysts, data scientists, product owners, and business stakeholders to translate business requirements into effective technical solutions. Participate in architectural discussions and contribute to technology decisions and…

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