Machine Learning SME

Weekday AI

Pune District

On-site

INR 1,000,000 - 2,000,000

Full time

4 days ago
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Job summary

Weekday AI seeks an experienced MLOps / Machine Learning SME to lead the design, development, deployment, and operationalisation of ML solutions across the complete lifecycle. The role requires hands-on expertise in MLOps, ML, Python, AWS SageMaker, and AWS Bedrock, with the ability to provide technical leadership and collaborate with clients and cross-functional teams.

The ideal candidate will build reliable, scalable ML platforms, mentor engineers, and drive best practices for experimentation,

Qualifications

  • 6+ years of experience in Machine Learning, MLOps, ML Engineering, AI Engineering, or a closely related technical field.
  • Hands-on expertise in end-to-end MLOps and Machine Learning.
  • Advanced proficiency in Python for machine learning and production engineering.
  • Mandatory hands-on experience with AWS SageMaker.
  • Mandatory experience with AWS Bedrock and foundation-model/GenAI solutions.
  • Strong understanding of ML model development, deployment, monitoring, and lifecycle management.
  • Experience building production-grade ML pipelines and automated model deployment workflows.

Responsibilities

  • Design and implement end-to-end MLOps pipelines covering model development, training, deployment, monitoring, and lifecycle management.
  • Develop and productionise machine learning solutions using Python and modern ML frameworks.
  • Build scalable ML workflows and infrastructure using AWS SageMaker.
  • Leverage AWS Bedrock to develop, integrate, and operationalise AI and foundation-model-based solutions.
  • Deploy machine learning models into scalable and reliable production environments.
  • Implement model monitoring, performance tracking, drift detection, alerting, and continuous improvement processes.
  • Develop automated workflows for model training, validation, deployment, and retraining.
  • Establish best practices for ML experimentation, versioning, reproducibility, governance, and deployment.
  • Collaborate with Data Scientists, Data Engineers, Software Engineers, DevOps, Cloud Architects, and Product teams.
  • Troubleshoot complex issues across ML pipelines, infrastructure, deployments, and production environments.
  • Optimise ML workloads for performance, scalability, reliability, and cost efficiency.
  • Evaluate emerging machine learning and AI technologies and identify opportunities for practical adoption.
  • Provide technical guidance and mentorship to engineering and machine learning teams.
  • Lead technical discussions, solution reviews, architecture sessions, and client-facing engagements.
  • Translate business and client requirements into scalable ML and MLOps solutions.
  • Prepare technical documentation, architecture designs, implementation approaches, and operational guidelines.
  • Contribute to engineering standards, reusable frameworks, automation, and continuous improvement initiatives.

Skills

MLOps
Machine Learning
Python
AWS SageMaker
AWS Bedrock
CI/CD
Cloud infra

Education

CS/Engineering degree

Job description

This role is for one of the Weekly's clients

Salary range: Rs 1000000 - Rs 2000000 (ie INR 10-20 LPA)

Experience: 6+ yrs

Location: pune, Hyderabad, Telangana, India, Bengaluru, Karnataka, India

Job Type: Full-time

We are looking for an experiencedMLOps / Machine Learning SMEto lead the design, development, deployment, and operationalisation of machine learning solutions across the complete ML lifecycle. The role requires strong hands-on expertise inMLOps, Machine Learning, Python, AWS SageMaker, and AWS Bedrock, along with the ability to provide technical leadership and work directly with clients and cross-functional stakeholders.

The ideal candidate will combine deep technical expertise with strong problem-solving and communication skills to build reliable, scalable, and production-ready machine learning platforms and solutions.

Key Responsibilities
  • Design and implementend-to-end MLOps pipelinescovering model development, training, deployment, monitoring, and lifecycle management.
  • Develop and productionise machine learning solutions usingPython and modern ML frameworks.
  • Build scalable ML workflows and infrastructure usingAWS SageMaker.
  • LeverageAWS Bedrockto develop, integrate, and operationalise AI and foundation-model-based solutions.
  • Deploy machine learning models into scalable and reliable production environments.
  • Implement model monitoring, performance tracking, drift detection, alerting, and continuous improvement processes.
  • Develop automated workflows for model training, validation, deployment, and retraining.
  • Establish best practices for ML experimentation, versioning, reproducibility, governance, and deployment.
  • Collaborate with Data Scientists, Data Engineers, Software Engineers, DevOps, Cloud Architects, and Product teams.
  • Troubleshoot complex issues across ML pipelines, infrastructure, deployments, and production environments.
  • Optimise ML workloads for performance, scalability, reliability, and cost efficiency.
  • Evaluate emerging machine learning and AI technologies and identify opportunities for practical adoption.
  • Provide technical guidance and mentorship to engineering and machine learning teams.
  • Lead technical discussions, solution reviews, architecture sessions, and client-facing engagements.
  • Translate business and client requirements into scalable ML and MLOps solutions.
  • Prepare technical documentation, architecture designs, implementation approaches, and operational guidelines.
  • Contribute to engineering standards, reusable frameworks, automation, and continuous improvement initiatives.
What Makes You a Great Fit
  • 6+ years of experiencein Machine Learning, MLOps, ML Engineering, AI Engineering, or a closely related technical field.
  • Strong hands-on expertise inend-to-end MLOps and Machine Learning.
  • Advanced proficiency inPythonfor machine learning and production engineering.
  • Mandatory hands-on experience withAWS SageMaker.
  • Mandatory experience withAWS Bedrockand foundation-model/GenAI solutions.
  • Strong understanding ofML model development, deployment, monitoring, and lifecycle management.
  • Experience building production-grade ML pipelines and automated model deployment workflows.
  • Strong understanding of cloud infrastructure, CI/CD, containers, APIs, and scalable application architectures.
  • Experience with model monitoring, observability, model performance, drift, and reliability practices.
  • Strong troubleshooting and problem-solving skills across machine learning and cloud environments.
  • Proven experience working as aTechnical SME, Lead, or senior technical contributor.
  • Strong client-facing experience with excellent communication and presentation skills.
  • Ability to explain complex ML and MLOps concepts to both technical and non-technical stakeholders.
  • Strong stakeholder management and cross-functional collaboration skills.
  • Ability to work independently, take ownership of complex technical initiatives, and provide effective technical leadership.
  • Experience working in Agile environments and managing multiple priorities effectively.
  • A Bachelor's or Master's degree inComputer Science, Engineering, Data Science, Artificial Intelligence, or a related disciplineis preferred.
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