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LLM Integration / LangChain Engineer

Role overview

Qualifications

  • 4 to 8 years of core enterprise backend web engineering or data pipelines experience
  • 2+ dedicated years writing production-level application code around LLM infrastructures
  • Strong technical mastery of Python or TypeScript
  • Mandatory certification: Professional-level machine learning or cloud developer certification from a major cloud vendor

Responsibilities

  • Design and construct advanced LLM applications and orchestrations using specialized frameworks
  • Build production-grade Retrieval-Augmented Generation (RAG) architectures
  • Develop complex multi-agent reasoning chains and workflows
  • Expose and consume programmatic endpoints, constructing high-throughput API integrations

Key facts

Hard skills

About the company

FyerX - Your Trusted Marketing Partner logo

FyerX - Your Trusted Marketing Partner

Digital Marketing & SEO Agencies

We are Digital Marketers with one primary focus. We help you realize improved outcomes from digital marketing strategies and services. Your success with us will be realized in large steps or in small incremental steps. FyerX, Bangalore is run by a passionate team of marketing experts who have devoted their time and expertise to make your business grow in the online world in this technology age. We fuel the growth of purpose driven brands through strategy activation, design empowerment, and market adoption. From cultivating new ideas to connecting the dots for customers or users, these are our core principles. Leverage our expertise to: Improve global online reach & visibility Strengthen local visibility Develop integrated marketing plans Drive growth for your brand online Improve and enhance your online reputation Measure and optimize digital efforts Craft effective digital campaigns Build your digital strategy

Company details

IndustryDigital Marketing & SEO Agencies
Company size11 - 50

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Job description

This is a remote position.

LLM Integration / LangChain Engineer

Job Details
  • Employment Type: Contract
  • Work Mode: Remote
  • Location: Offshore
  • Total Experience Required: 4 to 8 years
  • Relevant Experience Required: 2+ years of dedicated hands-on experience building, integration, and deploying applications powered by Large Language Models (LLMs)
  • Mandatory Certification: Developer certification from a major AI or Cloud platform (e.g., Google Cloud Certified Professional ML Engineer, AWS Certified Machine Learning - Specialty, or verifiable framework specialization credentials)

Job Summary
We are seeking an experienced LLM Integration / LangChain Engineer to design, develop, and implement the orchestration layers connecting our enterprise data assets with cutting-edge generative AI models. The ideal candidate will build production-grade Retrieval-Augmented Generation (RAG) pipelines, program multi-agent reasoning loops using LangChain, LangGraph, or LlamaIndex, and establish secure system middleware to safely deploy AI capabilities at scale.

Key Responsibilities
  • Design and construct advanced LLM applications and orchestrations using specialized frameworks like LangChain, LangGraph, LlamaIndex, or AutoGen.
  • Build production-grade Retrieval-Augmented Generation (RAG) architectures, configuring dynamic context chunking, document parsing, semantic metadata tagging, and reranking pipelines.
  • Develop complex multi-agent reasoning chains and workflows, implementing custom tool calling structures, memory caching architectures, and guardrail validations.
  • Expose and consume programmatic endpoints, constructing high-throughput API integrations connecting foundational LLMs (e.g., OpenAI, Anthropic, open-source models via Hugging Face/Ollama) with internal corporate databases and CRMs.
  • Apply rigorous AI evaluation and prompt tracking structures, utilizing observability platforms (e.g., LangSmith, Arize Phoenix) to monitor token usage bounds, model latency, and prompt generation drift.
  • Implement secure middleware execution barriers, configuring text sanitization, PII data-masking pipelines, prompt injection defensive rings, and toxicity filtering parameters.
  • Optimize model inference costs and context window budgets, designing custom semantic caching frameworks (e.g., GPTCache) to intercept recurring operational queries.



Requirements

  • 4 to 8 years of core enterprise backend web engineering or data pipelines experience, with 2+ dedicated years actively writing production-level application code wrapped directly around LLM infrastructures.
  • Strong technical mastery of Python or TypeScript, vector representations, prompt engineering grounding mechanics, asynchronous web frameworks (FastAPI), and SQL.
  • Deep structural understanding of transformer model designs, text embedding properties, agentic tool execution cycles, and API orchestration limits.
  • Mandatory certification: Professional-level machine learning or cloud developer certification from a major cloud vendor (AWS/GCP/Azure).

Preferred Qualifications
  • Prior experience fine-tuning open-source LLMs (e.g., Llama, Mistral) via quantization techniques like QLoRA or LoRA frameworks.
  • Familiarity with deploying AI applications within container systems (Docker, Kubernetes) integrated into modern DevSecOps CI/CD delivery loops.



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Marcus Rivera

Chief Revenue Officer

m.rivera@company.com
linkedin.com/in/marcusrivera
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