AI Engineer

eClercx

$105K — $125K *
Information Technology
5 - 7 years of experience
Job Overview by Ladders

Qualifications

  • 5+ years of software development experience in Python, C/C++, Go, or Java, with a focus on large-scale Python applications.
  • 3+ years of experience in designing, architecting, and deploying production ML systems.
  • Practical expertise with Large Language Models (LLMs) including integration and prompt engineering.
  • Strong understanding of various LLMs and their commercial capabilities.
  • Solid grounding in applied statistics and ML algorithms for efficient solutions.
  • Proficient analytical skills with a focus on collaborative problem-solving across teams.

Responsibilities

  • Design and implement agentic AI systems using MCP protocol to ensure safety and compliance.
  • Build evaluation frameworks for LLMs, optimizing retrieval and self-correction mechanisms for operations.
  • Connect AI agents to observability and incident management systems for automated diagnostics and remediation.
  • Collaborate with production teams to translate operational challenges into AI solutions, defining measurable outcomes.
  • Integrate governance frameworks into AI systems to ensure compliance and accuracy through continuous evaluation.
  • Optimize AI solutions for performance, focusing on cost and latency while adhering to service level objectives.
  • Establish and maintain data quality and feedback loops within the RAG pipeline to ensure knowledge freshness.

Benefits

  • Opportunity for professional growth and mentorship in cutting-edge AI technology.
  • Access to a collaborative and innovative work environment.
  • Participation in design reviews and rigorous experimentation standards.
Full Job Description
Responsibilities

AI Engineer

Location: Dallas, TX US

Type: Full-time

Job Summary

In this role, you will be responsible for launching and implementing GenAI agentic solutions aimed at reducing the risk and cost of managing large-scale production environments with varying complexities. You will address various production runtime challenges by developing agentic AI solutions that can diagnose, reason, and take actions in production environments to improve productivity and address issues related to production support.

Responsibilities
  • Build agentic AI systems: Design and implement tool-calling agents that combine retrieval, structured reasoning, and secure action execution (function calling, change orchestration, policy enforcement) following MCP protocol. Engineer robust guardrails for safety, compliance, and least-privilege access.
  • Productionize LLMs: Build evaluation framework for open-source and foundational LLMs; implement retrieval pipelines, prompt synthesis, response validation, and self-correction loops tailored to production operations.
  • Integrate with runtime ecosystems: Connect agents to observability, incident management, and deployment systems to enable automated diagnostics, runbook execution, remediation, and post-incident summarization with full traceability.
  • Collaborate directly with users: Partner with production engineers, and application teams to translate production pain points into agentic AI roadmaps; define objective functions linked to reliability, risk reduction, and cost; and deliver auditable, business-aligned outcomes.
  • Safety, reliability, and governance: Build validator models, adversarial prompts, and policy checks into the stack; enforce deterministic fallbacks, circuit breakers, and rollback strategies; instrument continuous evaluations for usefulness, correctness, and risk.
  • Scale and performance: Optimize cost and latency via prompt engineering, context management, caching, model routing, and distillation; leverage batching, streaming, and parallel tool-calls to meet stringent SLOs under real-world load.
  • Build a RAG pipeline: Curate domain-knowledge; build data-quality validation framework; establish feedback loops and milestone framework maintain knowledge freshness.
  • Raise the bar: Drive design reviews, experiment rigor, and high-quality engineering practices; mentor peers on agent architectures, evaluation methodologies, and safe deployment patterns


Eligibility Requirements
  • 5+ years of software development in one or more languages (Python, C/C++, Go, Java); strong hands-on experience building and maintaining large-scale Python applications preferred.
  • 3+ years designing, architecting, testing, and launching production ML systems, including model deployment/serving, evaluation and monitoring, data processing pipelines, and model fine-tuning workflows.
  • Practical experience with Large Language Models (LLMs): API integration, prompt engineering, fine-tuning/adaptation, and building applications using RAG and tool-using agents (vector retrieval, function calling, secure tool execution).
  • Understanding of different LLMs, both commercial and open source, and their capabilities (e.g., OpenAI, Gemini, Llama, Qwen, Claude).
  • Solid grasp of applied statistics, core ML concepts, algorithms, and data structures to deliver efficient and reliable solutions.
  • Strong analytical problem-solving, ownership, and urgency; ability to communicate complex ideas simply and collaborate effectively across global teams with a focus on measurable business impact.
  • Preferred: Proficiency building and operating on cloud infrastructure (ideally AWS), including containerized services (ECS/EKS), serverless (Lambda), data services (S3, DynamoDB, Redshift), orchestration (Step Functions), model serving (SageMaker), and infra-as-code (Terraform/CloudFormation).


In the US, the target base salary for this role is $105K-$125K. Compensation is based on a range of factors that include relevant experience, knowledge, skills, other job-related qualifications, and geography. We expect the majority of candidates who are offered roles at our company to fall throughout the range based on these factors

How to Apply
  • Click "Apply Now" to submit your resume through our career site
  • Be sure to include any relevant experience that aligns with the role.
  • Qualified candidates will be contacted by a member of our recruitment team for next steps


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