14 - 20 years

15 - 21 Lacs

Posted:4 days ago| Platform: Foundit logo

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Work Mode

On-site

Job Type

Full Time

Job Description

AI engineer

Machine Learning + Deep Learning + Generative AI

Key Responsibilities

  • Design and implement RAG pipelines that combine proprietary data (e.g., press releases, earnings transcripts) with LLMs to generate accurate, secure outputs.
  • Fine-tune open-source LLMs (e.g., LLaMA 2/3, Mistral, Mixtral) using instruction or LoRA-based methods for specific use cases such as branded content generation or question-answering.
  • Build and optimize embeddings, Vector search algorithms proficenecy e.g. HNSW, FAISS, IVFFlat and Microsoft -> Semantic Kernel and semantic retrieval systems using tools like sentence-transformers, FAISS, Weaviate, or Pinecone.
  • Collaborate with product and content teams to implement intelligent Q&A, press release graders, interview prep tools, and performance analysis assistants.
  • Develop traditional ML models for anomaly detection, time-series forecasting, and engagement optimization (Prophet, XGBoost, scikit-learn, Chronos, ARIMA, Microsoft -> Semantic Kernel etc.).
  • Integrate multimodal components such as TTS (e.g., ElevenLabs), image recommendation, and social publishing automation.
  • Deep Learning in Neural Networks.
  • Hands on experience in Tensorflow, Pytorch.
  • Ensure secure and scalable deployment of AI systems (on cloud AWS, AWS Bedrock, AWS SegemakerAzure OpenAI, or in-house GPU infrastructure).

Qualifications

  • 14+ years of hands-on experience in ML/AI engineering or applied data science
  • Proven experience with

    LLMs (GPT-4, Claude, LLaMA, Mistral, etc.)

    ?and RAG architectures
  • Strong coding skills in

    Python

    ?and experience with

    LangChain, Hugging Face Transformers, OpenAI API, PEFT/LoRA.

  • Experience fine-tuning LLMs using open-source frameworks and adapting models with domain-specific data
  • Deep understanding of

    NLP, search

    , and

    vector-based retrieval systems

  • Experience with

    time-series modeling, anomaly detection

    , or ML classification tasks
  • Familiarity with DevOps or MLOps tooling for deploying and monitoring LLM-powered applications
  • Excellent communication skills and ability to work cross-functionally with product, content, and engineering teams

Preferred

  • Experience in

    financial, PR, or media

    ?domains
  • Familiarity with

    embedding alignment, model evaluation, and prompt engineering

  • Comfortable working with both

    cloud APIs (e.g., OpenAI, Azure, Anthropic)

    ?and

    open-source LLMs

Good to have:

Postgressql vector db for embeddings, azure open ai services and c# .net 9 framework for building all business logic and services for our enterprise applications.?

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