57503 AI Machine Learning Engineer

Cephas Consultancy Services Private Limited

Pune District

On-site

INR 1,800,000 - 3,000,000

Full time

21 hours ago
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Job summary

Cephas Consultancy Services Private Limited in Pune seeks an experienced AI/ML Engineer with a strong MLOps focus to manage ML workflows and production operations. You will ensure stability, reliability, and governance across ML models and pipelines.

Requirements include hands-on MLOps, SQL and data analysis, Databricks/MLflow, and dashboarding with Power BI/Tableau; a CS degree is preferred with 8–11 years of experience in AIML.

Qualifications

  • Experience with MLOps processes and tools.
  • Experience with SQL, Databricks, MLFlow and PowerBI/Tableau.
  • Bachelor's or Master’s degree in CS or related field.

Responsibilities

  • Design, implement, and manage MLOps workflows and operational processes for AIML solutions.
  • Oversee day-to-day stability, reliability, and operational health of ML models and pipelines.
  • Manage model lifecycle operations including registration, versioning, lineage, and governance.
  • Implement monitoring for data drift, model performance, and service-level issues.
  • Develop and execute incident handling, recovery, rollback, and escalation plans.

Skills

MLOps tools
SQL & data analysis
Model lifecycle
Dashboards
Git & CI/CD

Education

Bachelor's or Master’s in CS or related field

Job description

About this position

Positions:1 Full Time
Experience
8 - 11 Years

Job Description - AI Machine Learning Engineer

SECTION A: POSITION SUMMARY

State the objective and purpose of the role.

  • Strong MLOps and production operations focus
  • Responsible for managing MLOps workflows, tools, and production support processes for ML solutions.
  • Ensure day-to-day stability, reliability, and performance of ML models and pipelines.
  • Manage model lifecycle controls, including versioning, lineage, reproducibility, monitoring, and governance.
  • Develop incident handling, recovery, and escalation procedures for ML-related issues.
  • Support data quality, lineage tracking, and governance practices across the ML lifecycle.
SECTION B: KEY RESPONSIBILITIES AND RESULTS

Indicate key responsibilities and performance indicators of this role.

For existing role, please indicate additional responsibilities in bold.

  1. Responsible for designing, implementing, and managing MLOps workflows, tools, and operational processes for AIML solutions.
  2. Oversee the day-to-day stability, reliability, and operational health of ML models and ML pipelines.
  3. Manage model lifecycle operations, including model registration, versioning, deployment tracking, lineage, reproducibility, and governance.
  4. Implement monitoring for data drift, concept drift, model performance degradation, inference quality, and service-level issues.
  5. Develop and execute incident handling, recovery, rollback, and escalation plans for ML-related issues.
SECTION C: QUALIFICATIONS / EXPERIENCE / KNOWLEDGE REQUIRED

Indicate key knowledge and skills required for this role to perform the tasks to a satisfactory level. To also specify a suitable level of qualification required (i.e. basic, advanced, or professional), where applicable.

Category
Essential for this role
Good to have

Education and Qualifications
Bachelor's or Master's degree in Computer Science or a related field

  • Experience with MLOps processes and tools
  • Experience with SQL, Databricks, MLFlow and PowerBI/Tableau.

Technical / Professional Skills

Please provide at least 3

  1. Hands-on experience with MLOps tools and cloud ML platforms such as MLflow, Databricks, Azure ML, or equivalent.
  2. Strong SQL and data analysis skills for validation, troubleshooting, monitoring, and reporting.
  3. Experience with model lifecycle management, including model registry, versioning, lineage, reproducibility, deployment tracking, and monitoring.
  4. Familiarity with dashboards and alerting tools such as Power BI, Tableau, Databricks SQL dashboards, or equivalent.
  5. Working knowledge of Git, CI/CD, scripting, and production support practices would be advantageous.

Non-Technical / Soft Skills

  1. Analytical and pragmatic, with the ability to interpret governance principles into implementation plans
  2. Clear communicator who can explain complex technical risks and solutions to non-technical stakeholders
  3. Self-driven and proactive, comfortable working in a fast-paced environment

Other Task-Specific Knowledge

  1. Familiarity with ML and data development process in telco environment
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