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GenAI Specialist @ Ford

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Ford  GenAI Specialist

Job Description


Short Description:

Ford Global Data Insight & Analytics team is looking for professionals experienced in NLP/LLM/GenAI, who are hands-on and can employ many NLP/Prompt engineering techniques from traditional statistical/ML NLP to DL-based sequence models and transformers in their day-to-day work.


Description:

You'll be working alongside leading technical experts from all around the world, on a variety of products involving Sequence/token classification, QA/chatbots, translation, semantic/search and summarization, among others.

Responsibilities:

  • Design NLP/LLM/GenAI applications/products by following robust coding practices,
  • Explore SoTA models/techniques so that they can be applied for automotive industry usecases
  • Conduct ML experiments to train/infer models; if need be, build models that abide by memory & latency restrictions,
  • Deploy REST APIs or a minimalistic UI for NLP applications using Docker and Kubernetes tools.
  • Showcase NLP/LLM/GenAI applications in the best way possible to users through web frameworks (Dash, Plotly, Streamlit, etc.,)
  • Converge multibots into super apps using LLMs with multimodalities.
  • Develop agentic workflow using Autogen, Agentbuilder, langgraph
  • Build modular AI/ML products that could be consumed at scale.

Qualifications:

Education: Bachelors or masters degree in computer science, Engineering, Maths or Science

Performed any modern NLP/LLM courses/open competitions is also welcomed.


Technical Requirements:

Soft Skills:

  • Strong communication skills and do excellent teamwork through Git/slack/email/call with multiple team members across geographies.

GenAI Skills:

  • Experience in LLM models like PaLM, GPT4, Mistral (open-source models),
  • Work through the complete lifecycle of Gen AI model development, from training and testing to deployment and performance monitoring.
  • Developing and maintaining AI pipelines with multimodalities like text, image, audio etc.
  • Have implemented in real-world Chat bots or conversational agents at scale handling different data sources.
  • Experience in developing Image generation/translation tools using any of the latent diffusion models like stable diffusion, Instruct pix2pix.
  • Expertise in handling large scale structured and unstructured data.
  • Efficiently handled large-scale generative AI datasets and outputs.

ML/DL Skills:

  • High familiarity in the use of DL theory/practices in NLP applications
  • Comfort level to code in Huggingface, LangChain, Chainlit, Tensorflow and/or Pytorch, Scikit-learn, Numpy and Pandas
  • Comfort level to use two/more of open source NLP modules like SpaCy, TorchText, fastai.text, farm-haystack, and others

NLP Skills:

  • Knowledge in fundamental text data processing (like use of regex, token/word analysis, spelling correction/noise reduction in text, segmenting noisy unfamiliar sentences/phrases at right places, deriving insights from clustering, etc.,)
  • Have implemented in real-world BERT/or other transformer fine-tuned models (Seq classification, NER or QA) from data preparation, model creation and inference till deployment.

Python Project Management Skills

  • Familiarity in the use of Docker tools, pipenv/conda/poetry env
  • Comfort level in following Python project management best practices (use of setup.py, logging, pytests, relative module imports,sphinx docs,etc.,)
  • Familiarity in use of Github (clone, fetch, pull/push,raising issues and PR, etc.,)

Cloud Skills and Computing:

  • Use of GCP services like BigQuery, Cloud function, Cloud run, Cloud Build, VertexAI,
  • Good working knowledge on other open-source packages to benchmark and derive summary.
  • Experience in using GPU/CPU of cloud and on-prem infrastructures.
  • Skillset to leverage cloud platform for Data Engineering, Big Data and ML needs.

Deployment Skills:

  • Use of Dockers (experience in experimental docker features, docker-compose, etc.,)
  • Familiarity with orchestration tools such as airflow, Kubeflow
  • Experience in CI/CD, infrastructure as code tools like terraform etc.
  • Kubernetes or any other containerization tool with experience in Helm, Argoworkflow, etc.,
  • Ability to develop APIs with compliance, ethical, secure and safe AI tools.

UI:

  • Good UI skills to visualize and build better applications using Gradio, Dash, Streamlit, React, Django, etc.,
  • Deeper understanding of javascript, css, angular, html, etc., is a plus.

Miscellaneous Skills:

Data Engineering:

  • Skillsets to perform distributed computing (specifically parallelism and scalability in Data Processing, Modeling and Inferencing through Spark, Dask, RapidsAI or RapidscuDF)
  • Ability to build python-based APIs (e.g.: use of FastAPIs/ Flask/ Django for APIs)
  • Experience in Elastic Search and Apache Solr is a plus, vector databases.

Job Classification

Industry: Automobile
Functional Area / Department: Data Science & Analytics
Role Category: Data Science & Machine Learning
Role: Data Science & Machine Learning - Other
Employement Type: Full time

Contact Details:

Company: Ford
Location(s): Chennai

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Keyskills:   Artificial Intelligence Natural Language Processing Machine Learning Tensorflow Huggingface AI/ML GCP Bert Deep Learning

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Ford

Ford India is a subsidiary of Ford Motor Company, the worlds second largest automaker.