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MLOps / LLMOps Engineer (Mid-Level)

Irth India

Posted 13 Sep 2026
Last seen 13 Sep 2026
Location India
Lifecycle fresh
Grade C

Data Science Mid level Full Time

About Irth Solutions

Irth Solutions is a leading provider of cloud-based SaaS software for damage prevention, asset integrity, stakeholder engagement and land management, helping energy, utility, telecom, and infrastructure companies protect their critical network infrastructure. With nearly three decades of industry experience, Irth serves customers across North America and continues to expand its platform with new data-driven and AI-powered capabilities.

MLOps / LLMOps Engineer – Insights (AI/ML)

Location: Remote – India
Department: Insights (AI/ML)
Reports to: Data Platform & Analytics Manager

About the Role

Irth is building a governed, multi-cloud Lakehouse on Databricks to unlock cross-product insights, enforce data residency, and accelerate AI/ML innovation for our customers.

We are looking for an MLOps/LLMOps Engineer to translate this foundation into scalable, automated, secure, and observable machine learning and LLM services.

You will work closely with Data Science, Data Engineering, Platform, Product, and domain teams to productionize ML and GenAI capabilities supporting Irth’s key industries:

This is a pivotal role in establishing reusable engineering patterns for data contracts, lineage, data quality, security, CI/CD, model deployment, monitoring, and operational reliability.

You will help ensure that models and LLM applications move efficiently from experimentation into production—and remain reliable, observable, secure, and cost-effective throughout their lifecycle.

Key Responsibilities

1. Build the ML/LLM Platform on the Lakehouse

2. Productionize ML & LLM Features

3. Engineer Reliability, Security & Compliance into the ML Lifecycle

4. Automate Everything – CI/CD & Testing

5. Observability & Production Operations

6. FinOps & Cost Management

Role Outcomes

In this role, you will help establish the engineering foundation that allows Irth to move from ML/LLM experimentation to reliable production AI at scale.

Success means that:

Requirements

Qualifications

Required Qualifications

Preferred Qualifications

Nice-to-Have Qualifications

Success Metrics

Success in this role will be measured by the engineer’s ability to establish reliable, repeatable, and secure MLOps/LLMOps practices across the enterprise platform.

Key measures include:

Benefits

Benefits

Originally posted on Himalayas

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Description review

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Where this listing came from

  1. 13 Sep 2026 Himalayas first sighting

Seen on 1 board over 0 days.