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Google·SaaS·14 days ago
14 days ago

Cloud AI Engineer, Google Cloud (English)

Mexico City, MexicoFull-timeOn-siteMid · 2-5 yearsAI Engineer

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Must-have skills for this role

  • tensorflow
  • vertex ai
  • python
  • machine learning

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Apply faster with autofill FREEThe NextRaise extension autofills your application in one click.careers.example.com/applyAutofillingFull namePriya SharmaEmailpriya.sharma@example.comPhone+49 30 1234567LocationBerlGet the extension

What you'll do

  • Be a trusted technical advisor to customers and solve complex machine learning challenges.
  • Coach customers on the practical challenges in machine learning systems: feature extraction and feature definition, data validation, monitoring, and management of features and models.
  • Work with Customers, Partners, and Google Product teams to deliver tailored solutions into production.
  • Create and deliver best practice recommendations, tutorials, blog articles, and sample code.
  • Travel up to 30% in-region for meetings, technical reviews, and onsite delivery activities.

What they're looking for

  • Bachelor's degree in Computer Science or equivalent practical experience.
  • Experience building machine learning solutions and working with technical customers.
  • Experience designing cloud enterprise solutions and supporting customer projects to completion.
  • Experience with data structures, algorithms, and software design.
  • Experience coding in Python.
  • Ability to communicate in English fluently to collaborate with other teams.

Nice to have

  • Experience with recommendation engines, data pipelines, distributed machine learning, and deep learning frameworks.
  • Experience in data analytics, data visualization techniques, and core Data Science methodologies.
  • Experience in software development, professional services, or technical consulting for new technology initiatives.
  • Knowledge of data warehousing (ETL/ELT), technical architectures, and big data environments (e.g., Hadoop, Spark).
  • Knowledge of cloud computing, including virtualization, multi-tenant infrastructures, and storage systems.
  • Excellent customer-facing communication and listening skills with expertise in architecting solutions.

Summarised by NextRaise from the employer’s description, which follows in full below.

Full description from employer

The Google Cloud Consulting Professional Services team guides customers through the moments that matter most in their cloud journey to help businesses thrive. We help customers transform and evolve their business through the use of Google’s global network, web-scale data centers, and software infrastructure. As part of an innovative team in this rapidly growing business, you will help shape the future of businesses of all sizes and use technology to connect with customers, employees, and partners.

As a Cloud AI Engineer, you will design and implement machine learning solutions for customer use cases, leveraging core Google products including TensorFlow, DataFlow, and Vertex AI. You will work with customers to identify opportunities to apply machine learning in their business, and travel to customer sites to deploy solutions and deliver workshops to educate and empower customers. Additionally, you will work closely with Product Management and Product Engineering to build and constantly drive excellence in our products.

In this role, you will be the Google Engineer working with Google's largest and most ambitious Cloud customers. Together with the team, you will support customer implementation of Google Cloud products through: architecture guidance, best practices, data migration, capacity planning, implementation, troubleshooting, monitoring, and much more.

Google Cloud accelerates every organization’s ability to digitally transform its business and industry. We deliver enterprise-grade solutions that leverage Google’s cutting-edge technology, and tools that help developers build more sustainably. Customers in more than 200 countries and territories turn to Google Cloud as their trusted partner to enable growth and solve their most critical business problems.

Responsibilities:

  • Be a trusted technical advisor to customers and solve complex machine learning challenges.
  • Coach customers on the practical challenges in machine learning systems: feature extraction and feature definition, data validation, monitoring, and management of features and models.
  • Work with Customers, Partners, and Google Product teams to deliver tailored solutions into production.
  • Create and deliver best practice recommendations, tutorials, blog articles, and sample code.
  • Travel up to 30% in-region for meetings, technical reviews, and onsite delivery activities.

Minimum qualifications:

  • Bachelor's degree in Computer Science or equivalent practical experience.
  • Experience building machine learning solutions and working with technical customers.
  • Experience designing cloud enterprise solutions and supporting customer projects to completion.
  • Experience with data structures, algorithms, and software design.
  • Experience coding in Python.
  • Ability to communicate in English fluently to collaborate with other teams.

Preferred qualifications:

  • Experience with recommendation engines, data pipelines, distributed machine learning, and deep learning frameworks.
  • Experience in data analytics, data visualization techniques, and core Data Science methodologies.
  • Experience in software development, professional services, or technical consulting for new technology initiatives.
  • Knowledge of data warehousing (ETL/ELT), technical architectures, and big data environments (e.g., Hadoop, Spark).
  • Knowledge of cloud computing, including virtualization, multi-tenant infrastructures, and storage systems.
  • Excellent customer-facing communication and listening skills with expertise in architecting solutions.
SaaS

Company

GoogleSaaS
Mexico City, Mexico

Company facts come from this company's own listings. We only show what the postings themselves carry.

Sourced from Google's careers site·first seen 15 Sept 2026·last verified 15 Sept 2026·How we source jobs

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