Associate Architect - Machine Learning (AWS)

6 - 9 years

3 - 6 Lacs

Posted:11 hours ago| Platform: Foundit logo

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Work Mode

On-site

Job Type

Full Time

Job Description

  • 6+ years of relevant hands-on technical experience implementing, and developing cloud ML solutions on AWS.
  • Hands-on experience on AWS Machine Learning services. Proven experience using AWS Sagemaker leveraging different types of data sources, Training jobs, real-time and batch Inference, and Processing Jobs.
  • Good Experience developing applications using LLMs with Langchain.
  • Must have experience using GenAI frameworks such as vertexAI, OpenAI, AWS Bedrock.
  • Must have Hands-on experience fine-tuning large language models( LLM) and Generative AI (GAI), specifically LLama2.
  • Must have Hands-on experience working with (Retrieval Augmented Generation) RAG architecture and experience using vector indexing such as Opensearch, Elasticsearch.
  • Strong familiarity with higher-level trends in LLMs and open-source platforms.
  • Should have experience with Deep Learning Concepts. Transformers, BERT, Attention models
  • Prompt Engineering: Engineer prompts and optimize few-shot techniques to enhance LLMs performance on specific tasks, eg personalized recommendations.
  • Model Evaluation Optimization: Evaluate LLMs zero-shot and few-shot capabilities, fine-tuning hyperparameters, ensuring task generalization, and exploring model interpretability for robust web app integration.
  • Response Quality: Collaborate with ML and Integration engineers to leverage LLMs pre-trained potential, delivering contextually appropriate responses in a user-friendly web app.
  • Implement and manage MLOps principles and best practices for Gen AI models
  • Thorough understanding of NLP techniques for text representation and modeling
  • Able to effectively design software architecture as required
  • Experience with at least one of the workflow orchestration tools, Airflow, StepFunctions, SageMaker Pipelines, Kubeflow etcKnowledge of a variety of machine learning techniques (Supervised/unsupervised etc) (clustering, decision tree learning, artificial neural networks, etc) and their real-world advantages/drawbacks
  • Ability to create end to end solution architecture for model training, deployment and retraining using native AWS services such as Sagemaker, Lambda functions, etc
  • Ability to collaborate with cross-functional teams such as Developers, QA, Project Managers, and other stakeholders to understand their requirements and implement solutions.

Good to have skills:

  • Experience of working for customers/workloads in the Edtech domain with use cases.
  • Experience with software development

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