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AI Engineer (LLMs + C#)

Job in Frisco, Collin County, Texas, 75034, USA
Listing for: Aperia Solutions
Full Time position
Listed on 2026-08-14
Job specializations:
  • Software Development
    AI Engineer (Applied/Software), Machine Learning/ ML Engineer, Backend Developer
Job Description & How to Apply Below

AI Engineer (LLMs + C#)

Join Aperia Solutions, a leader in SaaS solutions for the Payments and Compliance industries. Aperia is a Texas-based fintech and managed consultancy firm that creates custom SaaS applications and other software-based solutions for the payments, banking, and processing industry. Founded in 1999, Aperia offers business intelligence, risk management, compliance, and customer intelligence platforms. With offices in Dallas, Washington DC, and Vietnam, Aperia is a fast-paced, global organization that strives to improve efficiency in compliance, risk, and customer service operations.

Aperia's clients include banks, processors, payment facilitators, merchant service providers, independent sales organizations, and government entities. A career at Aperia promises a great challenge, culture, and opportunities to forge your own path.

We are seeking an experienced AI/LLM Software Engineer to join our growing development team and help design, build, and integrate intelligent solutions into modern enterprise applications.

The ideal candidate has hands-on experience working with Generative AI, Large Language Models (LLMs), AI-assisted software development, and AI-powered applications. You will work closely with software engineers, architects, business stakeholders, and product teams to identify opportunities where AI can improve productivity, automation, data intelligence, and customer experiences.

This is a hands-on engineering role. Candidates should have a solid foundation in software development and APIs, with some practical experience in C#/.NET. Deep expertise , React, or Angular is not required. We are more interested in candidates who understand modern AI/LLM technologies and can apply them effectively within enterprise software environments.

Key Responsibilities:

  • Design, develop, and integrate AI/LLM-powered capabilities into enterprise applications.
  • Evaluate and integrate LLM platforms, models, APIs, and AI services such as Azure OpenAI, OpenAI, or similar technologies.
  • Develop solutions using techniques such as:
    • Prompt engineering
    • Retrieval-Augmented Generation (RAG)
    • Embeddings and semantic search
    • Vector databases
    • Function/tool calling
    • Structured outputs
    • AI agents and agentic workflows
    • Context management
  • Build and consume RESTful APIs to integrate AI capabilities with existing enterprise applications.
  • Develop proof-of-concepts and production-ready AI solutions while evaluating model quality, accuracy, performance, cost, and scalability.
  • Leverage Git Hub Copilot and other AI coding assistants to improve software development productivity while maintaining code quality and security.
  • Develop appropriate approaches for AI evaluation, testing, monitoring, and validation, including identifying hallucinations and unreliable model responses.
  • Work with business stakeholders to identify practical use cases for AI and translate business requirements into technical solutions.
  • Integrate AI solutions with enterprise data sources, databases, APIs, and existing applications.
  • Participate in architecture and technical design discussions related to AI-enabled applications.
  • Ensure AI solutions follow enterprise security, privacy, compliance, and Dev Sec Ops  practices.
  • Research emerging AI/LLM technologies and recommend approaches that can provide business value.
  • Troubleshoot complex technical issues involving applications, APIs, AI services, data, and infrastructure.
  • Mentor team members and share knowledge related to AI/LLM technologies and best practices.

Required

Skills and Experience:

AI / LLM — Primary Focus:

  • 2+ years of software engineering experience with hands-on exposure to Generative AI and/or LLM technologies.
  • Practical experience integrating LLMs or AI services into applications.
  • Understanding of LLM concepts such as:
    • Prompt engineering
    • Tokens and context windows
    • Embeddings
    • Vector search
    • RAG
    • Fine-tuning concepts
    • Function/tool calling
    • AI agents
    • Model evaluation
  • Experience working with one or more LLM/AI platforms such as Azure OpenAI, OpenAI, Anthropic, AWS Bedrock, Google Vertex AI, or similar.
  • Experience developing AI-powered applications or prototypes using APIs, SDKs, or AI frameworks.
  • Experience using Git Hub Copilot,…
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