Machine Learning Engineer III, ML Operations

Expedia Group

Bengaluru

On-site

INR 3,500,000 - 7,000,000

Full time

6 days ago
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Job summary

Expedia Group in Bengaluru is seeking a Machine Learning Engineer III to mentor junior engineers and lead ML production projects. You will design and optimize end-to-end ML pipelines, including training, validation, deployment, scoring, and monitoring in hybrid/cloud environments.

The role requires 5+ years of experience, a technical degree, expertise in Spark, PyTorch or TensorFlow, and strong ML fundamentals.

Qualifications

  • End-to-end ML engineering pipelines in production (feature engineering, model training, validation, deployment, scoring, monitoring, and iteration).
  • Streaming applications in hybrid/cloud environments.
  • Bachelor’s or Master’s degree in a technical field or equivalent experience.

Responsibilities

  • Collaborate with peers to translate experimental DS workflows into robust production pipelines.
  • Develop, refactor, and test ML and software components with solid engineering practices.
  • Design big data and ML applications, including model training, evaluation, and serving at scale across batch and streaming workloads.
  • Evaluate, monitor, and operate ML models in production with metrics and observability.
  • Diagnose model and pipeline issues and mitigate data drift vs model drift.
  • Design guardrails for production models to protect outcomes and reliability.
  • Leverage AI as a co-pilot across ML lifecycle and apply responsible AI methods.
  • Identify inefficiencies in code and systems and implement improvements.

Skills

5+ years ML experience
Big data processing
Strong Python

Education

Bachelor's or Master's in CS/related

Tools

Spark
PyTorch
TensorFlow
CI/CD for ML
Model registry

Job description

At Expedia Group, we help travelers explore the world, one journey at a time. As a global travel company powered by passionate people, trusted partnerships, and leading technology, we connect travelers, partners, and advertisers through our consumer brands, B2B network, and travel advertising business.

Here, you’ll do meaningful work that helps millions of people discover, book, and experience travel with more ease, confidence, and joy. Our five Behaviors-Traveler First, Think Big, Operate with Excellence, Ownership Mindset, and Succeed Together-help foster a supportive environment where people can grow their careers and have the flexibility, benefits, and support to do their best work. Join us and build for travelers everywhere.

Introduction to the Team

We create and deliver an aligned, dedicated marketing strategy to fuel each Expedia Group brand’s success. Since our travelers interact with us through our brands, we maintain a brand-focused approach in our marketing while leveraging the scale and efficiency we’ve built through functional expertise.

Through our brands, we maintain a brand-focused approach in our marketing while leveraging the scale and efficiency we’ve built through functional expertise.
The Meta/SEM Bidding Programs team at Expedia Group is looking for a Machine Learning Engineer III who mentors junior engineers, applies modern data and ML engineering principles to improve existing systems, and leads complex, well-defined projects in a high-scale production environment.

In this role, you will:
  • Collaborate with peers and stakeholders across the organization to understand cross-dependencies, shape solutions, and translate experimental DS workflows into robust production pipelines.
  • Develop, refactor, and test complex ML and software components, applying solid software engineering practices (design principles, data structures, design patterns) to produce clean, maintainable, and optimized code.
  • Contribute to the design of big data and ML applications , including how models are trained, evaluated, and served at scale across batch and streaming (online) inference workflows.
  • Evaluate, monitor, and operate ML models in production , instrumenting pipelines to capture online and offline metrics (latency, throughput, accuracy/quality, drift, and business KPIs) and using them to drive iteration.
  • Diagnose model and pipeline issues (e.g., performance regressions, instability), distinguish data drift vs. model drift , and drive mitigations such as retraining, recalibration, and feature or architecture changes.
  • Design and implement guardrails for production models (safety constraints, thresholds, fallbacks, safe defaults) to protect customer and business outcomes and improve reliability.
  • Use AI as a co-pilot across the software and ML engineering lifecycle—to clarify requirements, accelerate coding, strengthen automated tests, support model evaluation, and improve delivery—while applying generative AI and large language model (LLM) techniques responsibly where they add value.
  • Identify and address areas of inefficiency in code, model architectures, and system operations (including memory/compute efficiency), recommending and implementing improvements to observability, policies, and processes.
Experience and Qualifications:
  • 5+ years of relevant professional experience with end-to-end machine learning engineering pipelines in production (feature engineering, model training, validation, deployment, scoring, monitoring, and iteration), including streaming applications in hybrid/cloud environments.
  • Bachelor’s or Master’s degree in a technical field (e.g., Computer Science) or equivalent relevant work experience.
  • Strong command of Spark (or similar big data frameworks), including evaluating, optimizing, and debugging large-scale data processing applications.
  • Proficiency with ML libraries such as PyTorch and/or TensorFlow, and experience integrating models into production services for inference at scale.
  • Solid ML fundamentals with working knowledge of deep learning and big data concepts, and demonstrated experience refactoring and scaling ML models for production (latency, throughput, and memory footprint).
  • Hands‑on experience evaluating and monitoring ML models in production , including metric and alert design, feedback loops, and basic MLOps practices (CI/CD for ML, experiment tracking, model registry, deployment and observability tools).
  • Familiarity with secure data access and governance (e.g., IAM policies for S3, access patterns for training and serving) and with designing moderately complex distributed systems centered on ML training and serving.
  • Working knowledge of generative AI and LLMs (e.g., prompting, RAG, fine‑tuning, embeddings/vector stores, evaluation) and their responsible, production‑grade application is strongly preferred.
  • Hands‑on experience using AI‑assisted engineering tools (e.g., GitHub Copilot, Claude Code, or equivalent) across the software and ML development lifecycle, consistent with Expedia Group’s expectation that engineers actively build and apply AI skills.
Accommodation requests

Expedia Group is committed to providing an inclusive and accessible recruiting experience. If you need an accommodation or adjustment due to a disability during the application or recruiting process, please submit a request at https://expedia.service-now.com/askeg?id=job_accommodation.

About Expedia Group

Expedia Group includes three flagship consumer brands - Expedia, Hotels.com, and Vrbo - along with a leading B2B travel business and travel advertising offerings. Across our brands and business, we help travelers explore the world with confidence and ease.

Important notice

Employment opportunities and job offers at Expedia Group will always come from Expedia Group’s Talent Acquisition and hiring teams. Never share sensitive personal information unless you are confident of the recipient. Expedia Group does not extend job offers via email or messaging tools to individuals with whom we have not made prior contact. Our email domain is @expediagroup.com. The official place to find and apply for roles is https://careers.expediagroup.com/jobs/.

Equal Opportunity

Expedia is committed to creating an inclusive work environment with a diverse workforce. All qualified applicants will receive consideration for employment without regard to race, religion, gender, sexual orientation, national origin, disability or age.

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