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Data Science Specialist

DetaPent

Salary not specified
Sep 4, 2025
CA, US
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The company is looking to architect and scale AI-first applications that leverage the latest in LLM, orchestration, and AWS-native services, specifically focusing on Natural Language Processing (NLP) and Generative AI.

Requirements

  • Total 4 to 5 + years of experience in machine learning, with a focus on NLP and Generative AI.
  • Strong experience building and deploying intent detection, text classification, sequence tagging, and entity recognition models.
  • Proficient in Lang Chain, LangGraph, vector databases (e.g., FAISS, Pinecone), and orchestration of LLM workflows.
  • Deep knowledge of AWS Bedrock, Amazon SageMaker, Lambda, DynamoDB, Step Functions, etc.
  • Experience working with open-source LLMs (Llama, Mistral, Falcon) or commercial APIs (Claude, GPT-4, etc.).
  • Proficient in Python, with a solid grasp of ML frameworks such as PyTorch, Hugging Face Transformers, scikit-learn.
  • Strong understanding of MLOps practices including model versioning, CI/CD for ML, monitoring, and auto-scaling.

Responsibilities

  • Design, develop, and deploy intent classification and intent detection models using LLMs and traditional NLP methods.
  • Build and optimize Natural Language Generation (NLG) pipelines for chatbot responses, summarization, content creation, or knowledge grounding.
  • Architect and implement Lang Chain and LangGraph based applications for LLM-driven workflows (e.g., autonomous agents, RAG systems).
  • Develop scalable machine learning pipelines using the AWS tech stack (e.g., Sage maker, Lambda, Bedrock, Step Functions, DynamoDB, Athena).
  • Integrate and fine-tune foundation models via AWS Bedrock, including Amazon Titan, Anthropic Claude, or Meta Llama.
  • Lead experimentation efforts, conduct A/B testing, and ensure continuous evaluation of deployed ML models.
  • Mentor junior ML engineers and contribute to best practices in MLOps, model governance, and responsible AI.

Other

  • Experience - 11+ years
  • Hybrid work model
  • Collaborate closely with product managers, ML researchers, and backend engineers to translate business requirements into robust AI solutions.