Live opening · Posted 13 days ago

AI / Machine Learning Engineer – MLOps

Umanist NA · Pune Division, Maharashtra, India (Hybrid)
Linkedin No
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At a glance

The key details from the original listing.

Posted 13 days ago
CompanyUmanist NA
LocationPune Division, Maharashtra, India (Hybrid)
Salary2.5M INR/yr - 3M INR/yr
Work modeNo
SourceLinkedin
Listed13 days ago

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About the role

Description supplied by the original job listing.

Location: Pune
Experience: 8–11 Years(30575)
Notice Period: Immediate to 45 Days
Employment Type: Full-Time
Interview Process: Virtual drive in the wek of 21st of September 2026, 2 Technical Rounds + 1 Client Round + HR
Role Overview
We are looking for an experienced AI / Machine Learning Engineer with a strong focus on MLOps and production operations.
The role will be responsible for managing MLOps workflows, tools, and production support processes for machine learning solutions. You will ensure the stability, reliability, performance, governance, and continuous improvement of ML models and pipelines throughout their lifecycle.
This is a client-facing role requiring excellent communication and stakeholder-management skills.
Key Responsibilities
Design, implement, and manage MLOps workflows, tools, and operational processes for AI/ML solutions.
Monitor the day-to-day stability, reliability, and operational health of ML models and pipelines.
Manage the complete ML model lifecycle, including:
Model Registration
Versioning
Deployment Tracking
Lineage
Reproducibility
Monitoring
Governance
Implement monitoring for data drift, concept drift, model performance degradation, inference quality, and service-level issues.
Develop and execute incident handling, recovery, rollback, and escalation procedures for ML-related issues.
Support data quality, lineage tracking, and governance throughout the ML lifecycle.
Perform SQL-based data validation, troubleshooting, monitoring, and reporting.
Develop and maintain dashboards and alerts for ML and production environments.
Support CI/CD, scripting, Git-based workflows, and production operations.
Translate ML governance principles into practical implementation and operational processes.
Collaborate with technical and non-technical stakeholders to identify and resolve complex ML operational issues.
Contribute to continuous improvement of MLOps processes, tools, and production support practices.
Must-Have Skills
7+ years of relevant experience in AI/ML, MLOps, data engineering, or related areas.
Strong hands-on experience with MLOps processes and tools.
Hands-on experience with MLOps/cloud ML platforms such as:
MLflow
Databricks
Azure ML
Or equivalent platforms
Strong SQL and data analysis skills.
Experience with model lifecycle management, including:
Model Registry
Versioning
Lineage
Reproducibility
Deployment Tracking
Monitoring
Experience with Databricks and ML workflows.
Experience with Power BI / Tableau / Databricks SQL Dashboards or equivalent dashboarding and alerting tools.
Working knowledge of Git, CI/CD, scripting, and production support practices.
Understanding of ML model monitoring, data quality, and governance.
Strong analytical and problem-solving skills.
Excellent communication and stakeholder-management skills.
Ability to explain complex technical risks and solutions to non-technical stakeholders.
Self-driven and proactive approach to working in a fast-paced environment.
Familiarity with ML and data development processes in a telecommunications environment.
Bachelor's or Master's degree in Computer Science or a related field.
Good-to-Have Skills
Experience with advanced MLOps/cloud ML platforms beyond the core stack.
Experience implementing automated model monitoring and alerting frameworks.
Experience with production incident management, rollback, recovery, and escalation processes.
Knowledge of advanced ML governance and compliance practices.
Experience with cloud-based data and ML architectures.
Experience in telecommunications / telecom analytics.
Experience working with large-scale enterprise ML environments.
Relevant certifications in cloud, data, AI/ML, or MLOps.
Additional Information
Notice Period: Immediate to 45 Days
Location: Pune; local candidates preferred.
The role involves regular interaction with international stakeholders and teams.
Selected candidates may be required to travel to Singapore within 30–45 days of onboarding, subject to documentation and travel formalities.
During the Singapore assignment, an additional SGD 3,500 per month will be provided toward accommodation and other expenses.
Candidates should have strong employment stability, preferably 2+ years with an organization.
Excellent communication skills are mandatory due to the client-facing nature of the role.
Skills: troubleshooting,cloud ml platforms,mlops tools,senior stakeholder management,sql,versioning,model registry,mlflow,reproducibility,telecom environment,databricks,lineage,powerbi/tableau,model lifecycle management

Work arrangement
No

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