Cloud Architect with Strong AI/ML (AZURE ) Job at Cloud Analytics Technologies LLC, San Jose, CA

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  • Cloud Analytics Technologies LLC
  • San Jose, CA

Job Description

Job Details

Cloud Data Solutions (AzureData Lake, Databricks, distributed systems) 5+ yrs

AI/ML Architecture (end-to-end pipeline: ingestion training deployment monitoring)

DataEngineering (Spark, Hadoop, MapReduce)

DataModeling + DB Systems (relational + NoSQL)
The Cloud Architect will be a key contributor to designing, evolving, and optimizing our company's cloud-based data architecture. This role requires a strong background in data engineering, hands-on experience building cloud data solutions, and a talent for communicating complex designs through clear diagrams and documentation. Must work EST hours.

Strategy, Planning, and Roadmap Development: Align AI and ML system design with broader business objectives, shaping technology roadmaps and architectural standards for end-to-end cloud-driven analytics and AI adoption.

Designing End-to-End AI/ML Workflows: Architect and oversee all stages of AI/ML pipeline development-data ingestion, preprocessing, model training, validation, deployment, monitoring, and lifecycle management within cloud environments.

Selecting Technologies and Services: Evaluate and choose optimal cloud services, AI/ML platforms, infrastructure components (compute, storage, orchestration), frameworks, and tools that fit operational, financial, and security requirements.

Infrastructure Scalability and Optimization: Design and scale distributed cloud solutions capable of supporting real-time and batch processing workloads for AI/ML, leveraging technologies like Kubernetes, managed ML platforms, and hybrid/multi-cloud strategies for optimal performance.

MLOps, Automation, and CI/CD Integration: Implement automated build, test, and deployment pipelines for machine learning models, facilitating continuous delivery, rapid prototyping, and agile transformation for data and AI-driven products.

Security, Compliance, and Governance: Establish robust protocols for data access, privacy, encryption, and regulatory compliance (e.g., GDPR, ethical AI), coordinating with security experts to continuously assess risks and enforce governance.

Business and Technical Collaboration: Serve as the liaison between business stakeholders, development teams, and data scientists, translating company needs into technical solutions, and driving alignment and innovation across departments.

Performance Evaluation & System Monitoring: Monitor infrastructure and AI workloads, optimize resource allocation, troubleshoot bottlenecks, and fine-tune models and platforms for reliability and cost-efficiency at scale.

Documentation and Best Practices: Create and maintain architectural diagrams, policy documentation, and knowledge bases for AI/ML and cloud infrastructure, fostering a culture of transparency, learning, and continuous improvement.

Continuous Innovation: Stay abreast of new technologies, frameworks, trends in AI, ML, and cloud computing, evaluate emerging approaches, and lead strategic pilots or proofs-of-concept for next-generation solutions.

This role blends leadership in technology and systems architecture with hands-on expertise in cloud infrastructure, artificial intelligence, and machine learning, pivotal for driving innovation, scalability, and resilience in a modern enterprise.

Required Qualifications

Bachelor's degree in Computer Science, Data Science, Information Systems, or a related field.

Minimum of 5 years of hands-on data engineering experience using distributed computing approaches (Spark, Map Reduce, DataBricks)

Proven track record of successfully designing and implementing cloud-based data solutions in Azure

Deep understanding of data modeling concepts and techniques.

Strong proficiency with database systems (relational and non-relational).

Exceptional diagramming skills with tools like Visio, Lucidchart, or other data visualization software.

Preferred Qualifications

Advanced knowledge of cloud-specific data services (e.g., DataBricks, Azure Data Lake).

Expertise in big data technologies (e.g., Hadoop, Spark).

Strong understanding of data security and governance principles.

Experience in scripting languages (Python, SQL).

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