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LLM Engineer

Remote: 
Full Remote
Contract: 
Experience: 
Expert & Leadership (>10 years)
Work from: 

Offer summary

Qualifications:

8-10 years as LLM Engineer, Strong fundamentals in Generative AI, Data Science background required, Proficient in Python and REST.

Key responsabilities:

  • Develop and optimize NLP models
  • Collaborate on GenAI solutions
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NR Consulting Information Technology & Services Large https://nrconsulting.com/
1001 - 5000 Employees
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Job description

Title: LLM Engineer
Location: Remote - but travel would require whenever needed
Duration: 6 months + possible extension
Number of interviews - 2 (1 Internal and 1 Client Interview)

Must have Skills :
  • 8 years – 10 years, LLM Engineer, Generative AI Fundamentals (Strong) 2 years, Data Science background must- General Experience (5 years), Python (Strong/ intermediate), REST, AWS basic understanding would also work.

Job Description :
  • An ideal candidate has extensive hands-on python experience with a heavy focus and curiosity in GenAI over the last 2 years.
  • 6+ Years experience building RESTful APIs on Python, with SDKs like Fast API (ideal), Flask, etc.
  • Experience scaling GenAI solutions to thousands of users in production is ideal.
  • Experience with RAG, understands of decisions made for the chunking strategy.
  • Experience with cloud deployments of services (lambda, ecs, or eks) related to GenAI solutions.
  • Understanding of, ideally experience with, unstructured.io, llama index, Lang chain, and other mainstream RAG components.
  • Understanding of knowledge graphs and graph RAG, and how to leverage LLMs to create and manage.
  • Understanding of retrieval mechanisms like vector dbs. and search.
  • Understanding of agentic workflows.

Other Qualifications:
  • They are consistently curious about the GenAI space, experimenting and exploring.
  • Must be comfortable working as part of the global dev team spanning EST, IST, and time zones in between

Role Description:
  • Data Scientist with 6+ years of expertise in Natural Language Processing (NLP), Large Language Models (LLMs), and Generative AI (GenAI).
  • The ideal candidate will have hands-on experience with search-related work, including relevance tuning, text classification, and topic modeling.
  • Additionally, experience in building Retrieval-Augmented Generation (RAG) pipelines for search and chat applications is highly desired.

Key Responsibilities:
  • Develop and optimize NLP models for text classification, text clustering, topic modeling, and relevance tuning in search.
  • Work with LLMs to build advanced generative AI solutions for search and chat applications.
  • Design and implement Retrieval-Augmented Generation (RAG) pipelines to improve search and conversational AI systems.
  • Collaborate with cross-functional teams to deploy data-driven search enhancements and GenAI solutions.
  • Analyze and fine-tune search relevance based on user behavior and search intent from query log.

Qualifications:
  • Experience in running and fine-tuning models from Hugging face.
  • Familiarity with building and deploying RAG pipelines.
  • Familiarity with vector databases like Elasticsearch, Pinecone, etc.
  • Strong programming skills (e.g., Python, TensorFlow, PyTorch, SQL)
  • Experience in model deployment & MLOps is a plus
  • Experience with cloud platforms (AWS) is a plus.

Required profile

Experience

Level of experience: Expert & Leadership (>10 years)
Industry :
Information Technology & Services
Spoken language(s):
English
Check out the description to know which languages are mandatory.

Other Skills

  • Collaboration
  • Curiosity

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