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Engineer II, Data; Cloud & AI

Job in Fort Mill, York County, South Carolina, 29715, USA
Listing for: Relha LLC
Full Time position
Listed on 2026-08-31
Job specializations:
  • Software Development
    AWS
Salary/Wage Range or Industry Benchmark: 55000 - 92000 USD Yearly USD 55000.00 92000.00 YEAR
Job Description & How to Apply Below
Position: Engineer II, Data (Cloud & AI)

Build a career that matches all your initiative with an impressive dose of innovation. From cutting-edge resources and a collaborative environment to the freedom to make an impact and more, you’ll find the ingredients you need at LPL Financial to shape your success while helping clients pursue their financial goals.

Job Overview:

LPL Financial is looking for an Engineer II, Data who can build and operate cloud-native data solutions at enterprise scale. This role combines AWS cloud engineering, data pipeline development, platform reliability, and AI-assisted software development. The ideal candidate enjoys solving operational challenges, automating manual processes, and using modern AI tools to accelerate engineering outcomes while supporting mission-critical production systems.

The Engineer II, Data (Cloud & AI) is responsible for designing, building, supporting, and optimizing cloud-native data solutions within the Enterprise Data Integration Framework (EDIF).

This role supports the ingestion, validation, transformation, enrichment, and standardization of enterprise data while leveraging modern cloud and AI technologies to improve engineering productivity, operational efficiency, and platform observability.

The ideal candidate combines strong data engineering fundamentals with AWS cloud experience and practical experience using AI-assisted development tools and generative AI technologies.

Job Responsibilities
  • Design, develop, and maintain cloud-based data ingestion and transformation pipelines.
  • Support onboarding of new vendor and enterprise data sources.
  • Optimize processing performance for large-volume datasets.
  • Build reusable ingestion, validation, and transformation frameworks.
  • Develop automated data quality validation processes.
  • Develop and support AWS-based solutions.
  • Build infrastructure using Terraform and Infrastructure as Code practices.
  • Improve platform scalability, resiliency, and disaster recovery readiness.
  • Implement monitoring and observability capabilities.
  • Utilize AI coding assistants to improve development velocity and engineering efficiency.
  • Develop proof‑of‑concept solutions leveraging LLMs and generative AI services.
  • Build intelligent operational tooling for monitoring, troubleshooting, and support workflows.
  • Identify opportunities where AI can reduce engineering effort or improve service delivery.
  • Evaluate and implement AI‑driven automation capabilities within established governance standards.
Production Support & Reliability
  • Participate in application support and incident response processes.
  • Troubleshoot and resolve production pipeline failures.
  • Conduct root cause analysis and drive preventative improvements.
  • Support platform monitoring and operational reporting.
  • Contribute to runbooks and operational documentation.
  • Participate in Agile ceremonies and sprint activities.
  • Work closely with product managers, architects, analysts, and business stakeholders.
  • Collaborate with vendor teams and upstream/downstream data consumers.
  • Contribute to architecture discussions and technical design reviews.
Key Objectives
  • Deliver scalable and resilient data ingestion solutions.
  • Improve AWS cloud infrastructure and operational maturity.
  • Implement AI-enabled engineering solutions where appropriate.
  • Reduce manual support effort through automation.
  • Maintain high platform availability and service quality.
Support enterprise data governance and security standards

What Are We Looking For?
  • Build scalable cloud data pipelines.
  • Improve platform reliability and operational excellence.
  • Reduce operational overhead through intelligent tooling.
  • Support modernization initiatives across cloud and data platforms.
Requirements

Bachelor’s degree in Computer Science, Engineering or related field with minimum of 3 years of experience in software engineering, cloud engineering, platform engineering, or data engineering OR Master's degree in Computer Science, Data Engineering, Artificial Intelligence, Information Systems, Engineering, or a related field with minimum of 1 year of relevant experience.

  • Demonstrated experience building, supporting, or maintaining cloud-based applications, data platforms, or production systems.
  • Hands‑on experience with AWS…
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