Bangalore, India
14 hours ago
Senior Machine Learning Platform Engineer

Summary

Summary:

Join Guidewire as a Senior Machine Learning Platform Engineer and play a pivotal role in architecting and scaling our next-generation ML platform. You will drive the design and implementation of secure, cloud-native infrastructure supporting the full ML lifecycle, from data ingestion to model monitoring. Collaborate with cross-functional teams to deliver innovative, reliable, and efficient solutions that empower our customers and accelerate Guidewire’s AI and data platform adoption.

At Guidewire, you’ll help deliver measurable value and efficiency for customers by advancing operational excellence and transformative innovation. Our Product Development & Operations (PDO) priorities focus on secure, scalable platform operations, accelerating AI and cloud adoption, and ensuring every customer is successful and referenceable. You’ll contribute to a culture of curiosity, collaboration, and responsible AI, supporting Guidewire’s mission to transform the global P&C insurance industry through technology and data-driven insights.

Job Description

What you’ll do

Architect and evolve a scalable, secure ML platform that supports the end‑to‑end ML lifecycle, including data preparation, training, evaluation, deployment, and monitoring.

Design and implement core ML infrastructure for model training, hyperparameter tuning, experiment tracking, and model registry, using cloud‑native and open‑source technologies.

Orchestrate ML workflows using tools such as Kubeflow, SageMaker, MLflow, Vertex AI, or Databricks, ensuring reproducibility and robust automation.

Partner with Data Engineers to build reliable, high‑quality data pipelines and feature pipelines that provide model‑ready datasets at scale.

Implement and improve CI/CD for ML, including automated testing, validation, and safe rollout/rollback of models and data pipelines.

Optimize ML workload performance and cost across compute, storage, and networking layers on public cloud (AWS, GCP, or Azure).

Embed observability and governance into the platform, including logging, tracing, model performance monitoring, and drift detection.

Collaborate with security, compliance, and data governance teams to ensure the platform adheres to Guidewire’s standards for security, privacy, and auditability.

Provide technical leadership and mentorship to other engineers, influencing architectural decisions, coding standards, and best practices for ML platform and MLOps.

Continuously explore and apply AI/automation (including GenAI) to improve developer and data scientist productivity, platform reliability, and operational efficiency.

What you’ll bring:

Demonstrated ability to embrace AI and use data‑driven insights to drive innovation, productivity, and continuous improvement in your current role.

Bachelor’s or Master’s degree in Computer Science, Engineering, or a related field.

10+ years of software engineering experience, including 5+ years working on ML platforms or infrastructure.

Expertise in building large‑scale distributed systems and microservices, with solid understanding of system design and architecture.

Strong programming skills in Python, Go, or Java, with emphasis on writing clean, testable, maintainable code.

Hands‑on experience with containerization and orchestration, for example Docker and Kubernetes.

Familiarity with MLOps tools such as MLflow, Kubeflow, SageMaker  and how they fit into an end‑to‑end ML platform.

Cloud platform experience on AWS, GCP, or Azure, including core services for compute, storage, networking, and identity.

Experience with statistical learning algorithms (e.g., GLM, XGBoost, Random Forest) and deep learning approaches (e.g., neural networks, transformers), with a practical understanding of how they are trained and deployed.

Strong communication, leadership, and problem‑solving skills, with the ability to influence across functions and work effectively in a global, distributed environment.

Preferred :

Experience with real‑time model inference and streaming ML pipelines, including low‑latency serving and online feature computation.

Deep knowledge of model governance, reproducibility, and monitoring, including experiment lineage, versioning, and approval workflows.

Understanding of model performance metrics and drift detection, and experience implementing monitoring for data drift, concept drift, and model quality.

Exposure to feature stores (e.g., Feast, Tecton) and workflow orchestration tools (e.g., Airflow, Argo) in production environments.

Familiarity with regulatory and compliance considerations for ML systems, including model auditability, interpretability, and data privacy laws such as CCPA/GDPR.

Experience with real‑time data pipelines and streaming technologies such as Kafka, Flink, or Spark Structured Streaming.

Experience using TeamCity and Terraform (or similar tools) for infrastructure‑as‑code and CI/CD of platform components.

Domain experience in insurance or related industries (such as banking or finance), or a demonstrated ability to ramp quickly in highly regulated domains.

About Guidewire

Guidewire is the platform P&C insurers trust to engage, innovate, and grow efficiently. We combine digital, core, analytics, and AI to deliver our platform as a cloud service. More than 540+ insurers in 40 countries, from new ventures to the largest and most complex in the world, run on Guidewire.

As a partner to our customers, we continually evolve to enable their success. We are proud of our unparalleled implementation track record with 1600+ successful projects, supported by the largest R&D team and partner ecosystem in the industry. Our Marketplace provides hundreds of applications that accelerate integration, localization, and innovation.

For more information, please visit www.guidewire.com and follow us on Twitter: @Guidewire_PandC.

Guidewire Software, Inc. is proud to be an equal opportunity and affirmative action employer. We are committed to an inclusive workplace, and believe that a diversity of perspectives, abilities, and cultures is a key to our success. Qualified applicants will receive consideration without regard to race, color, ancestry, religion, sex, national origin, citizenship, marital status, age, sexual orientation, gender identity, gender expression, veteran status, or disability. All offers are contingent upon passing a criminal history and other background checks where it's applicable to the position.

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