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Senior Machine Learning Engineer - Data Analytics

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QuantiphiIN KA Bengaluru4 months agoWebsite
May be filled
Full-time
Senior

Compensation

Salary undisclosed
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Description

While technology is the heart of our business, a global and diverse culture is the heart of our success. We love our people and we take pride in catering them to a culture built on transparency, diversity, integrity, learning and growth.


If working in an environment that encourages you to innovate and excel, not just in professional but personal life, interests you- you would enjoy your career with Quantiphi!

Role : Senior Machine Learning Engineer - Data Analytics

Experience : 3-5 Years

Location : Bangalore (Hybrid)

Role & Responsibilities:

  • Experimenting with range of models, evaluating model performance and model selection.

  • Performing data cleaning, feature engineering, selection and evaluation.

  • Implementing the data and model training pipelines on cloud using AWS services such as sagemaker, lambda functions, etc.

  • Documentation for Model architecture and solutions 

  • Collaboration with cross-functional teams, including platform engineers, Machine learning engineers, software developers and business stakeholders, to ensure data solutions meet business needs.

  • Adhering to project timelines 

  • Communicate with non-technical stakeholders to understand their data requirements and convey the benefits of data solutions, including migration strategies

Must have skills:

  • Machine Learning Engineer with 3–4 years of experience, based in Bangalore, with a requirement to work from the client’s office 2 days a week.

  • Good exposure on Python (Pandas, Numpy, Matplotlib, Advance Python Syntax’s etc)

  • Hands on experience on OpenAI Framework, required to develop AI applications. 

  • Handson experience in developing the RAG pipeline, LLM Gen AI models and Prompt Engineering. 

  • Handover experience on creating the MCP’s (Model Context Protocol).

  • Exposure on Agentic frameworks like langgraph and langchain.

  • Exposure to the Agentic framework (like AWS Bedrock Agentcore) is mandatory. 

  • Exposure on Data Analytics - Data Analytics, Advanced SQL and Amazon Redshift, AWS Glue, Amazon DynamoDB, Amazon Managed Streaming for Apache Kafka.

  • Exposure on below AWS Services - Amazon Bedrock (AgentCore), Amazon SageMaker Studio, Amazon Elastic Container Registry, Amazon API Gateway, AWS Elastic Beanstalk, AWS Lambda, Amazon Elastic Container Service, Kubernetes.

  • Hands-on GenAI Model Providers (example : OpenAI models, Anthropic models and Gemini Models). 

  • ML Algos : Bagging and Boosting algorithms

Good to have skills:  

  • AWS Bedrock Models

  • Redshift and SQL

  • ML Algos : Bagging and Boosting algorithms

  • Knowledge of Data Pipelines (GlueJobs)

If you like wild growth and working with happy, enthusiastic over-achievers, you'll enjoy your career with us!

Stack

LLMsGenerative AIPythonLangGraphModel Context ProtocolKafkaSQLLangChainpandasAgentic AIAWSNumPyMachine LearningKubernetesRAGPrompt EngineeringData EngineeringSageMaker
Posted
Apr 6, 2026
Last seen
Jun 26, 2026
First seen
Jun 26, 2026

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