Senior Lead Data Scientist

V2 Solutions

Hinoba-an

Hybrid

PHP 979,000 - 1,101,000

Full time

14 days+

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Job summary

V2 Solutions is seeking an AWS SageMaker ML and Gen AI Engineer role for 6-12 month projects with 5+ years of ML engineering experience. The senior lead data scientist will design, develop, and deploy Gen AI, LLMs, and NLP solutions using AWS SageMaker and Bedrock, collaborating across Data Science and DevOps teams.

Key responsibilities include model development, fine-tuning, deployment, and monitoring using CloudWatch, with a hybrid work model in Bangalore/Hyderabad.

Qualifications

  • 4+ years of experience in ML engineering with Gen AI, LLMs, and NLP.

Responsibilities

  • Model Development: Build, train, and fine-tune Gen AI, LLMs, and traditional AI models using AWS SageMaker and AWS Bedrock.
  • Fine-Tuning & Customization: Fine-tune pre-trained LLMs.
  • Experience: 4+ years of experience in machine learning engineering, with expertise in Gen AI, LLMs, traditional AI, deep learning, and NLP.
  • 6+ Hands-on experience with AWS DevOps and AWS Bedrock for training, fine-tuning, and deploying AI models.
  • Experience with open-source LLMs (e.g., LLaMA) or Bedrock-hosted models (e.g., Titan, Claude).
  • Experience with AWS Dev Ops, CI/CD integration.
  • Kubernetes, Docker
  • Experience in Creating ML Flows using AWS Sagemaker
  • Experience in using ML Models monitoring using CloudWatch
  • Experience in working with GEN AI, Langchain, Open AI Models and deployment of GEN AI models using AWS Sagemaker
  • Experience in Deploying ML models using AWS SageMaker ML workflow orchestration and enabling CI/CD integration
  • Experience with AWS services (e.g., S3, Lambda, Step Functions, Comprehend) and cloud architecture.
  • Soft Skills: Strong problem-solving and analytical skills. Excellent communication to convey complex AI/NLP concepts to non-technical stakeholders.
  • Ability to thrive in collaborative, fast-paced environments.
  • Mandatory Skills AWS Sagemaker Professional with ML, NLP, GEN AI and Dev Ops experience.

Skills

Gen AI
LLMs
NLP
Python
AWS SageMaker
AWS Bedrock
DevOps
CI/CD
Kubernetes
Docker
Langchain
OpenAI Models

Tools

AWS SageMaker
AWS Bedrock
Docker
Kubernetes
CI/CD
CloudWatch
S3

Job description

AWS SageMaker ML and GEN AI Engineer Role Senior Lead Data Scientist

Number of Openings 3

Duration of project 6-12 months (initial contract 3 months, later extended based on project)

No of years experience 5+ years

Detailed job description - Skill Set: The AWS SageMaker Engineer (Gen AI, LLMs, & NLP) will design, develop, and deploy advanced machine learning models, focusing on Generative AI, Large Language Models (LLMs), Agentic AI, traditional AI, and Natural Language Processing (NLP) using AWS SageMaker and AWS Bedrock. This role involves leveraging Python and deep learning frameworks to build scalable, intelligent systems for tasks like text generation, sentiment analysis, autonomous decision-making, and more, using models such as LLaMA or similar. The engineer will collaborate with data scientists, AI researchers, and DevOps teams to deliver production-ready AI solutions that align with business objectives.

Key Responsibilities:

Model Development: Build, train, and fine-tune Gen AI, LLMs, Agentic AI, and traditional AI models using AWS SageMaker and AWS Bedrock, including deep learning models for NLP tasks (e.g., text classification, entity recognition, summarization) and models like LLaMA.

Fine-Tuning & Customization: Fine-tune pre-trained LLMs

Experience: 4+years of experience in machine learning engineering, with expertise in Gen AI, LLMs, traditional AI, deep learning, and NLP.

6+ Hands-on experience with AWS Devops and AWS Bedrock for training, fine-tuning, and deploying AI models.

Experience with open-source LLMs (e.g., LLaMA) or Bedrock-hosted models (e.g., Titan, Claude Experience with AWS Dev Ops, CI/CD integration.

Experience with AWS Dev Ops, CI/CD integration.

Kubernetes, Dockers

Experience in Creating ML Flows using AWS Sagemaker

Experience in using ML Models monitoring using clodwatch

Experience in working with GEN AI, Langchain, Open AI Models and deployment of GEN AI models using AWS Sagemaker

Experience in Deploying ML models using AWS sagemaker ML workflow orchestration and enabling CI/CD integration

Experience with AWS services (e.g., S3, Lambda, Step Functions, Comprehend) and cloud architecture.

Soft Skills:

Strong problem-solving and analytical skills. Excellent communication to convey complex AI/NLP concepts to non-technical stakeholders. Ability to thrive in collaborative, fast-paced environments.

Mandatory Skills AWS Sagemaker Professional with ML, NLP, GEN AI and Dev Ops experience.

Vendor Billing range 8000-9000 per day depending on experience and interview performance.

Work Location Bangalore, Hyderabad Hybrid Yes BGV Pre/Post onboarding Pre If its pre-onboarding, Interim or final BG report Final BG Report

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