Talentmate
India
22nd August 2026
2608-10892-396
Mandatory Skills:
Machine Learning (ML), CI/CD (for ML pipelines), Data Pipeline & Feature Management, Model Deployment & Serving, Model Lifecycle Management, Model Registry & Experiment Tracking, Monitoring & Observation, Python
Key Responsibilities
• Design and implement scalable CI/CD frameworks for machine learning lifecycle management and deployment automation.
• Define model deployment architectures and serving strategies aligned with business and operational requirements.
• Lead implementation of automated ML pipeline solutions supporting model validation, testing, release, and deployment processes.
• Design and optimize model serving frameworks to improve scalability, reliability, and operational efficiency.
• Establish model registry standards for model versioning, governance, traceability, and lifecycle management.
• Define experiment tracking frameworks to support reproducibility, auditability, and model performance management.
• Design and implement model monitoring frameworks to evaluate prediction quality, model performance, data drift, concept drift, and operational health while supporting proactive model lifecycle management and retraining strategies.
• Establish deployment validation and model quality assurance practices to improve production readiness.
• Review ML pipeline designs and deployment implementations to ensure adherence to engineering and operational standards.
• Troubleshoot complex deployment, serving, and ML lifecycle management challenges through detailed root cause analysis.
• Mentor team members on MLOps practices, deployment automation, model lifecycle management, and operational excellence.
• Collaborate with various teams and stakeholders to support end-to-end ML platform delivery.
• Drive continuous improvement initiatives focused on automation, reliability, governance, and operational efficiency.
Behavioral Competencies
• Demonstrates strong ownership while driving MLOps excellence and operational effectiveness.
• Collaborate effectively with various teams and business stakeholders to ensure smooth delivery.
• Promotes automation-first engineering through proactive optimization and continuous improvement.
• Applies strong analytical thinking to evaluate complex ML deployment and lifecycle management challenges.
• Demonstrates adaptability while managing evolving MLOps technologies and business requirements.
• Communicates effectively regarding deployment status, risks, dependencies, and improvement opportunities.
• Maintains high attention to detail across pipeline design, deployment automation, validation, and operational processes.
• Encourages continuous improvement in MLOps practices, deployment frameworks, and lifecycle management processes.
• Supports knowledge sharing and mentoring to strengthen team capabilities.
• Balances scalability, reliability, governance, and business priorities while driving delivery excellence.
Perks and Benefits for Irisians
Iris provides world-class benefits for a personalized employee experience. These benefits are designed to support financial, health and well-being needs of Irisians for a holistic professional and personal growth. Click here to view the benefits.
| Role Level: | Mid-Level | Work Type: | Full-Time |
|---|---|---|---|
| Country: | India | City: | Noida ,Uttar Pradesh |
| Company Website: | https://www.irissoftware.com | Job Function: | DevOps & QA |
| Company Industry/ Sector: |
IT Services and IT Consulting | ||
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