AI Engineer

MarkiTech

$100K — $130K *
Information Technology
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • 5-7 years of hands-on experience in machine learning and Generative AI solutions.
  • Strong background in agent-based architecture and advanced Python programming.
  • Expertise in AWS AI/ML services such as AWS Bedrock, EKS, and CodePipeline.
  • Familiarity with open-source frameworks like LangChain and LangGraph.
  • Experience in deploying containerized applications in Kubernetes environments.
  • Ability to analyze workflows and identify performance optimization opportunities.
  • Bachelor's degree or higher in a relevant field.

Responsibilities

  • Develop and deploy agent-based Generative AI applications using RAG.
  • Implement scalable Gen AI solutions utilizing AWS technologies.
  • Utilize open-source frameworks to enhance solution development.
  • Operationalize APIs for Gen AI applications in Kubernetes.
  • Evaluate and optimize application performance with observability tools.
  • Investigate workflows and identify bottlenecks for improvement.
  • Build intelligent agents for complex objectives through inter-agent communication.

Benefits

  • Flexible hybrid work arrangement, requiring 2-3 days in the office.
  • Opportunities for skill expansion in solution design and project management.
  • Collaborative environment with interdisciplinary teams.
  • Access to cutting-edge technology and tools in AI development.
Full Job Description
About the Job

What will your typical day look like?:

As an AI Engineer, you will focus on building, deploying, and maintaining advanced AI solutions that deliver tangible impact for our clients and internal teams. Working closely with data scientists, DevOps professionals, and software developers, you will:

  • Develop and deploy agent-based Generative AI applications using Retrieval Augmented Generation (RAG) and multi-agent workflows.
  • Implement scalable Gen AI solutions leveraging AWS Bedrock, Amazon EKS, and AWS CodePipeline.
  • Utilize open-source frameworks such as LangChain and LangGraph to accelerate solution development and ensure code modularity.
  • Operationalize APIs for Gen AI applications, deploying containerized solutions on Kubernetes (EKS).
  • Evaluate and optimize application performance using observability tools and Gen AI evaluation frameworks.
  • Investigate and enhance operational workflows, proactively identifying bottlenecks and opportunities for performance optimization.
  • Build and deploy intelligent Agents capable of inter-agent communication to achieve complex objectives.
  • While your primary focus will be on hands-on development, there are opportunities to get involved in solution design, client pitches, or project management if you are interested in expanding your skill set.


About You:

You are someone with:


  • Hands-on experience building and deploying machine learning and Generative AI solutions, with expertise in agent-based architecture.
  • Deep knowledge of ML and AI concepts, particularly in Generative AI (e.g., LLMs, RAG, agent frameworks).
  • Proven expertise with AWS AI/ML services, including AWS Bedrock, Containers, EKS, and CodePipeline for production-grade AI deployments.
  • Strong proficiency in open-source Gen AI frameworks such as LangChain, LangGraph, or similar.
  • Experience developing, evaluating, and optimizing RAG-based solutions.
  • Advanced Python programming skills for ML development, automation, and API design.
  • A track record of deploying containerized applications as scalable web services within Kubernetes environments.
  • The ability to analyze and optimize operational workflows, identify bottlenecks, and drive continuous improvement.
  • Excellent communication skills, both written and verbal.
  • Familiarity with MLOps best practices and large-scale enterprise AI deployments.
  • Prior experience in professional services, consulting, or advisory roles.
  • A Bachelor's degree or higher in Computer Science, Software Engineering, Electrical/Computer Engineering, or a related field.


Must have skills:

  • LLM fine-tuning; RAG embeddings; LangGraph multi-agent; AWS Batch/Lambda; optimization (speedup)
  • EKS/Kubernetes cluster ownership
  • CodePipeline/CI-CD for model deployment
  • REST API productization/testing framework details


Hybrid role- 2-3 days in office.

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