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Remote Data Engineering Jobs in Kentucky (NOW HIRING)

Collaborate with data engineers, business analysts, and business stakeholders to translate business ... Ability to orchestrate and influence remote teams, ensuring successful implementation of complex ...

Data Engineer (Remote)

Louisville, KY · On-site +1

$104.80K - $125.80K/yr

Enable data for AI/ML use cases by preparing feature-rich datasets, supporting feature engineering, and ensuring data consistency for model training and inference * Support deployment and ...

Data Engineer (Remote)

Louisville, KY · On-site +1

$104.80K - $125.80K/yr

Enable data for AI/ML use cases by preparing feature-rich datasets, supporting feature engineering, and ensuring data consistency for model training and inference * Support deployment and ...

$94.90K - $113.90K/yr

Key Responsibilities * ETL Data Engineering: Develop and maintain ETL data engineering processes ... Remote apply for this job

$94.90K - $113.90K/yr

Key Responsibilities * ETL Data Engineering: Develop and maintain ETL data engineering processes ... Remote apply for this job

The practice helps clients modernize technology and data platforms and apply engineering to mission ... remote client service delivery. Recruiting for this role ends on 06/30/2026. Work you'll do As a ...

Lead Data Scientist

Lexington, KY · On-site +1

$180K - $200K/yr

Enterprise AI Location: 100% Remote Sponsorship: Available for exceptional candidates About the ... Partner cross-functionally with data science, software engineering, product, and business ...

Join our rapidly expanding team of dedicated data scientists, engineers, policy experts, and ... per week remote/home. Office Location Options: * Louisville, KY * Boston, MA * New York, NY

Join our rapidly expanding team of dedicated data scientists, engineers, policy experts, and ... per week remote/home. Office Location Options: * Louisville, KY * Boston, MA * New York, NY

Join our rapidly expanding team of dedicated data scientists, engineers, policy experts, and ... per week remote/home. Office Location Options: * Louisville, KY * Boston, MA * New York, NY

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Showing results 1-20

Remote Data Engineering information

See Kentucky salary details

$38.6K

$112.7K

$154.2K

How much do remote data engineering jobs pay per year?

As of May 30, 2026, the average yearly pay for remote data engineering in Kentucky is $112,662.00, according to ZipRecruiter salary data. Most workers in this role earn between $99,400.00 and $119,400.00 per year, depending on experience, location, and employer.

What are the key skills and qualifications needed to thrive as a Remote Data Engineer, and why are they important?

To thrive as a Remote Data Engineer, you need strong programming skills (such as Python, Java, or Scala), experience with data modeling, ETL processes, and a solid understanding of database systems, often supported by a degree in computer science or a related field. Proficiency with big data tools like Apache Spark, Hadoop, cloud platforms (AWS, Azure, GCP), and certifications in these technologies is highly valued. Excellent problem-solving abilities, self-motivation, and clear communication are crucial soft skills for remote collaboration and project delivery. These competencies ensure effective data pipeline development, reliable data management, and seamless teamwork across distributed environments.

How do remote data engineers typically collaborate with other team members across different time zones?

Remote data engineers often work with distributed teams, which requires strong communication and organization skills. They collaborate using tools like Slack, Zoom, and project management platforms to stay aligned on data pipeline development, troubleshooting, and deployment. Regular stand-ups, asynchronous documentation, and clear communication of progress are essential for ensuring everyone is on the same page, regardless of location. Flexibility in working hours and proactive scheduling of meetings help facilitate effective collaboration and project delivery.

What is remote data engineering?

Remote data engineering involves designing, building, and maintaining data systems and pipelines while working from a location outside of a traditional office. Remote data engineers use tools to collect, process, and store large sets of data, making it accessible for analysis and business decision-making. They collaborate with teams virtually, often using cloud-based technologies, to ensure that data infrastructure is reliable, scalable, and secure. This role requires strong technical skills in programming, databases, and data architecture, as well as the ability to communicate effectively in a distributed work environment.

How can I make $2000 a week working from home?

Remote data engineers can earn $2000 or more per week by working on high-demand projects, leveraging specialized skills in data pipelines, cloud platforms, and programming languages like Python or SQL. Achieving this income often requires advanced expertise, certifications, and experience with tools such as AWS or Azure, as well as the ability to handle multiple clients or projects simultaneously.

What is the difference between Remote Data Engineering vs Remote Data Analyst?

AspectRemote Data EngineeringRemote Data Analyst
Required CredentialsBachelor's in CS, Data Science, or related field; experience with SQL, Python, cloud platformsBachelor's in Statistics, Data Science, or related; proficiency in Excel, SQL, visualization tools
Work EnvironmentBuilds data pipelines, manages databases, works with cloud infrastructureAnalyzes data sets, creates reports, visualizes data insights
Employer & Industry UsageTech companies, finance, healthcare, e-commerceMarketing agencies, finance, retail, consulting

Remote Data Engineering focuses on designing and maintaining data infrastructure, while Remote Data Analysts interpret data to provide insights. Both roles require strong analytical skills but differ in technical depth and responsibilities.

What are the most commonly searched types of Data Engineering jobs in Kentucky? The most popular types of Data Engineering jobs in Kentucky are:
What are popular job titles related to Remote Data Engineering jobs in Kentucky? For Remote Data Engineering jobs in Kentucky, the most frequently searched job titles are:
What job categories do people searching Remote Data Engineering jobs in Kentucky look for? The top searched job categories for Remote Data Engineering jobs in Kentucky are:
What cities in Kentucky are hiring for Remote Data Engineering jobs? Cities in Kentucky with the most Remote Data Engineering job openings:
Senior Data Modeler

Full-time

Posted 27 days ago


BrightSpring Health Services rating

4.5

Company rating: 4.5 out of 10

Based on 59 frontline employees who took The Breakroom Quiz

218th of 228 rated social care providers


Job description

BrightSpring Health Services


We are seeking a highly skilled Senior Data Modeler to join our Data Engineering & Architecture team. This role will play a critical part not only in designing, developing, and maintaining logical and physical data models, but also in architecting, building, and optimizing the data pipelines and platforms that power our enterprise data warehouse, analytics ecosystem, and business intelligence solutions. This position ensures that data assets are structured, engineered, and delivered in a scalable, high performance, and user-friendly manner across the organization.


  • Design, implement, and optimize conceptual, logical, and physical data models to support enterprise reporting, analytics, and data science use cases.
  • Collaborate with data engineers, business analysts, and business stakeholders to translate business requirements into robust data structures.
  • Define and enforce data modeling standards, best practices, and naming conventions across the organization.
  • Develop and maintain data dictionaries, ER diagrams, and metadata documentation to ensure clarity and consistency.
  • Analyze existing data models and workflows to identify opportunities for improvement in performance, scalability, and maintainability.
  • Contribute to the development of enterprise data architecture patterns and reusable modeling frameworks.
  • Architect, build, and optimize scalable ETL/ELT pipelines using modern data engineering frameworks and cloud technologies.
  • Lead the design and development of distributed data processing workflows using Databricks, PySpark, Azure SQL and/or Azure Synapse.
  • Develop and optimize data ingestion frameworks (batch and streaming) from diverse sources including FHIR, APIs, files, databases, and event streams.
  • Ensure data pipelines meet enterprise standards for performance, reliability, observability, and recoverability.
  • Perform advanced SQL, PySpark, or Python optimization to maximize query speed and dataset availability for analytics and downstream applications.
  • Oversee data lake and data warehouse architecture, including partitioning strategies, delta lake management, schema evolution, and performance tuning.
  • Troubleshoot, diagnose, and resolve complex data engineering and pipeline issues across cloud environments.
  • Mentor junior engineers and modelers, influencing engineering patterns, coding standards, and architectural direction.
  • Collaborate with security teams to implement proper access controls, encryption, secrets management, and compliance processes.

  • Bachelor’s degree in Computer Science, Information Systems, Data Management, or related field (or equivalent experience).
  • 7–10 years of experience in data modeling, data engineering, dimensional modeling, or data architecture roles.
  • Strong knowledge of relational, dimensional, and NoSQL data modeling techniques.
  • Advanced SQL skills and experience designing for cloud data platforms (Databricks, Synapse, Azure SQL Databases, Redshift, BigQuery, or similar).
  • Expertise in building scalable ETL/ELT processes using modern data engineering tools (Azure Data Factory, Databricks, Synapse Pipelines, SSIS, etc.).
  • Strong proficiency with Python, PySpark, or Scala for data engineering and scripting.
  • Hands-on experience with Azure cloud data services: Azure Data Factory, Azure SQL Database, Azure Synapse Analytics, Azure Data Lake Storage Gen2, Databricks.
  • Experience designing and optimizing data lakes, delta lakehouse architectures, and large-scale distributed data systems.
  • Experience working with DevOps concepts—CI/CD pipelines, Git branching strategies, automated testing, and deployment.
  • Ability to orchestrate and influence remote teams, ensuring successful implementation of complex data solutions.
  • Detail-oriented with excellent organizational skills.
  • Effective working in a cross-functional, dynamic, and remote environment.
  • Strategic thinker with the ability to balance short-term deliverables with long-term platform evolution.

Preferred

  • Hands-on experience designing, building, and operationalizing unified data platforms, including semantic layers, ontologies, and knowledge graphs, to enable AI/ML product development.
  • Experience with enterprise-scale analytics environments and BI tools (Power BI, Qlik, Tableau, Databricks AI/BI Dashboards).
  • Exposure to data governance, data cataloging, and MDM practices.
  • Knowledge of data vault modeling, star schema, and snowflake modeling.
  • Experience designing real-time/streaming data pipelines (Kafka, Event Hubs, Spark Streaming, etc.).
  • Familiarity with API platforms and tools such as Postman or API gateways.
  • Experience tuning large-scale Spark workloads and optimizing cloud compute costs.
  • Strong communication and collaboration skills across both technical and non-technical teams.

Key Competencies

  • Analytical and meticulous mindset with a strong ability to solve complex data design and engineering challenges.
  • Ability to balance short-term deliverables with long-term enterprise strategy.
  • Strong documentation and communication skills for presenting technical concepts to non-technical audiences.
  • Leadership qualities with the ability to mentor and guide junior team members.
  • Ability to think holistically across data modeling, data engineering, and data architecture disciplines.

BrightSpring Health Services provides complementary home- and community-based health solutions for complex populations in need of specialized and/or chronic care. Through the Companys service lines, including pharmacy, home health care, and rehabilitation, we provide comprehensive and more integrated care and clinical solutions in all 50 states to over 475,000 customers, clients and patients daily. BrightSpring has consistently demonstrated strong and industry-leading quality metrics across its services lines, while improving the health and quality of life for high-need individuals and reducing overall healthcare system costs.For more information, please visit www.brightspringhealth.com. Follow us on Facebook, LinkedIn, and X.

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