Level AI
Level AI

Senior Machine Learning Engineer - NLP (Bangalore/Noida Location)

TLDR

Work on cutting-edge machine learning techniques to build data-driven solutions for NLP problems while collaborating with talented teams from top tech companies.

Level AI was founded in 2019 and is a Series C startup headquartered in Mountain View, California. Level AI revolutionizes customer engagement by transforming contact centers into strategic assets. Our AI-native platform leverages advanced technologies such as Large Language Models to extract deep insights from customer interactions. By providing actionable intelligence, Level AI empowers organizations to enhance customer experience and drive growth. Consistently updated with the latest AI innovations, Level AI stands as the most adaptive and forward-thinking solution in the industry.   Empowering contact center stakeholders with real-time insights, our tech facilitates data-driven decision-making for contact centers, enhancing service levels and agent performance. As a vital team member, your work will be cutting-edge technologies and will play a high-impact role in shaping the future of AI-driven enterprise applications. You will directly work with people who've worked at Amazon, Facebook, Google, and other technology companies in the world. With Level AI, you will get to have fun, learn new things, and grow along with us. Ready to redefine possibilities? Join us! We'll love to explore more about you if you have
  • Big picture: Understand customers’ needs and innovate and use cutting-edge Machine Learning techniques to build data-driven solutions.
  • Work on NLP problems across areas such as voice agents, agentic applications, text classification, entity extraction, and summarisation, using LLMs.
  • Collaborate with cross-functional teams to integrate/upgrade AI solutions into company’s products and services
  • Optimise existing machine learning models for performance, scalability and efficiency.
  • Help implement and evaluate reasoning, planning, and memory modules for agents.
  • Build, deploy and own scalable production NLP pipelines.
  • Build post-deployment monitoring and continual learning capabilities.
  • Propose suitable evaluation metrics and establish benchmarks.
  • Keep abreast of SOTA techniques in your area and exchange knowledge with colleagues.
  • Desire to learn, implement and apply latest emerging model architectures (like LLMs), inference optimizations, distributed training, using open-source models, etc.
  • Your role at Level AI includes but is not limited to
  • B.Tech/M.Tech/PhD in computer science or mathematics-related fields from tier-1 engineering institutes with 3+ years of industry experience in Machine Learning and NLP.
  • Strong coding skills in Python and Pytorch with familiarity with libraries like Transformers and LangChain/LangGraph.
  • Strong practical experience in NLP problems in areas such as text classification, entity tagging, information retrieval, question-answering, natural language generation, clustering, etc.
  • Knowledge and hands-on experience with Transformer-based Language Models like BERT, Llama, Qwen, Gemma, DeepSeek, etc.
  • In-depth familiarity with LLM training concepts, model inference optimizations, GPUs, etc.
  • Experience with ML and Deep Learning model deployments using REST API, Docker, Kubernetes, etc.
  • Good problem-solving skills involving data structures and algorithms.
  • Knowledge of cloud platforms (AWS/Azure/GCP) and their machine learning services is desirable.
  • Knowledge of multimodal models is a plus
  • Knowledge of real-time streaming tools/architectures like Kafka and Pub/Sub is a plus.
  • Bonus Points
    Experience with open-source LLMs (LLaMA, Mistral, etc.)
    Basic understanding of vector search, RAG, and prompt engineering concepts
    Contributions to AI side projects or GitHub repos
    Exposure to vector databases or retrieval pipelines (e.g., FAISS, Pinecone)
     
    To learn more visit : https://thelevel.ai/
     

    Level AI enhances customer engagement by transforming contact centers into strategic assets through an AI-native platform. By utilizing advanced technologies like Large Language Models, it extracts deep insights from customer interactions, providing organizations with actionable intelligence to improve customer experience and drive growth.

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