Cloud Data AI Architect
- AI
- Machine Learning
- AWS
- Azure
- GCP
- Databricks
- Snowflake
- AI/ML
- RAG
- Data Architecture
- ETL
- ELT
- Python
- SQL
- Azure OpenAI
- AWS Bedrock
- Vertex AI
- OpenAI
- MLOps
Role Summary
We are looking for an experienced Cloud Data & AI Architect to design and implement scalable cloud-based data and AI solutions. The ideal candidate should have strong experience in cloud architecture, data engineering, data platforms, Generative AI, machine learning, and enterprise architecture.
Key Responsibilities
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Design end-to-end Cloud Data & AI architecture for enterprise applications and platforms.
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Build scalable data solutions using AWS, Azure, or Google Cloud Platform (GCP).
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Architect modern Data Lakes, Data Warehouses, Lakehouse, and Data Mesh solutions.
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Design data ingestion, transformation, integration, and analytics pipelines.
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Work with technologies such as Databricks, Snowflake, Spark, Kafka, and cloud-native data services.
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Design and implement AI/ML and Generative AI solutions using LLMs.
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Develop architecture for RAG, vector databases, AI agents, and enterprise GenAI applications.
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Define data architecture, governance, security, quality, and integration standards.
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Work with business and technical stakeholders to understand requirements and convert them into architecture solutions.
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Lead technical discussions, architecture reviews, solution design, and proof-of-concept activities.
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Evaluate new Data & AI technologies and recommend appropriate solutions.
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Provide technical leadership to data engineers, AI/ML engineers, developers, and other architecture teams.
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Ensure solutions meet requirements for scalability, performance, security, reliability, and cost optimization.
Required Skills
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Strong experience as a Data Architect, Cloud Architect, Data & AI Architect, or Solution Architect.
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Strong hands-on knowledge of at least one cloud platform: AWS / Azure / GCP.
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Experience with Databricks and/or Snowflake.
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Strong understanding of Data Lake, Data Warehouse, Lakehouse, ETL/ELT, and data pipelines.
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Experience with Spark, Kafka, Python, SQL, APIs, and distributed data processing.
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Knowledge of Machine Learning, Generative AI, LLMs, RAG, embeddings, and vector databases.
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Understanding of data governance, security, metadata management, and data quality.
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Experience designing enterprise-scale cloud and data solutions.
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Strong communication and client-facing skills.
Preferred Skills
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Cloud certifications in AWS, Azure, or GCP.
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Databricks or Snowflake certification.
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Experience with Azure OpenAI, AWS Bedrock, Google Vertex AI, OpenAI models, or similar AI platforms.
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Experience with MLOps / LLMOps and AI model deployment.
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Experience working in large enterprise environments and leading architecture discussions.
Experience
Typically 10+ years of overall IT experience, including significant experience in cloud, data architecture, data engineering, and AI/ML solutions.
Education
Bachelor's or Master's degree in Computer Science, Engineering, Data Science, Information Technology, or a related field.
Cloud Data AI Architect Β· eTeam Inc.