AI Data Architect

Tata Consultancy Services

Hyderabad

On-site

INR 3,500,000 - 6,000,000

Full time

34 hours ago
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Job summary

Tata Consultancy Services in Hyderabad is seeking a Data Architect for AI with 8–15 years of experience to lead the design and deployment of enterprise-scale AI data architectures. You will create infrastructure for data processing, model training, and inference on cloud platforms to support ML initiatives.

The role requires deep expertise in cloud services, distributed computing, handling large datasets and complex workloads, and experience with MLOps to build robust systems.

Qualifications

  • Bachelor’s or Master’s degree in Engineering or Technology.
  • Proven track record of delivering enterprise data solutions at scale.
  • Strong understanding of data models, pipelines and cloud-native data architectures.

Responsibilities

  • Architect scalable, secure, cloud-based data architecture to support AI/ML workloads.
  • Build, optimize and deploy end-to-end data solutions including data processing engines.
  • Develop data pipelines, ETL processes, and big data analytics infrastructure.
  • Select technologies including data lakes, batch/real-time processing, and MLOps tools.
  • Collaborate with stakeholders, data scientists and teams to translate requirements.
  • Ensure reliability, performance and security of data and AI systems.

Skills

Cloud Platforms
Data analytics
AI/ML knowledge
Programming and scripting
Technical communication
Data modeling
Distributed computing

Education

Bachelor’s or Master’s degree in Engineering or Technology

Tools

Databricks
Snowflake
Spark
SQL

Job description

Role Overview: We are seeking an inventive Data Architect for AI with 8–15 years of experience to lead the strategic design and implementation of enterprise-scale AI solutions. This role requires deep expertise in designs, develops, and deploys scalable and secure data architectures on cloud platforms to support AI ML initiatives. They bridge the gap between business needs and technical implementation by creating the necessary infrastructure for data processing, model training, and inference. This role requires expertise in cloud services, distributed computing, that handle large datasets and complex workloads for AI/ML frameworks, and MLOps to build robust systems

Key Responsibilities:
  • Architectural and Design: Create and document scalable, secure, and cost-effective data architecture in the cloud (AWS/Azure/GCP) to support AI/ML data workloads.
  • Solution development: Build, optimize, and deploy end-to-end data solutions, such as recommendation data processing engines and data analytic engines.
  • Data Engineering: Proficiency in Data pipelines, ETL processes, Big Data Analytics and data management (SQL, NoSQL, data cleaning).
  • Technical implementation: Select and implement appropriate technologies, including data lakes, batch processing, real-time processing systems and MLOps tools.
  • Collaboration: Work with stakeholders, data scientists, and other teams to translate business requirements into technical specifications and ensure successful technical delivery.
  • System management: Ensure the reliability, performance, and security of Data & AI intensive systems.
Skills:
  • Cloud Platforms: Deep knowledge and expertise in cloud data services and ANY ONE cloud platforms (AWS or Azure OR Google Cloud).
  • Data and analytics: Experience in ANY ONE of the following data platforms, Data modeling, and Distributed computing frameworks.
  • Databricks
  • Snowflake
  • AI/ML knowledge: Experience in machine learning frameworks, platforms, and MLOps (Machine Learning Operations) practices.
  • Programming and scripting: Proficiency in languages like Python, Spark and SQL for data manipulation and system development.
  • Technical communication: Strong ability to document architectures and communicate complex technical concepts to both technical and non-technical audiences.
Experience with ANY ONE of the following Cloud Native Data Services:
  • AWS: AWS Glue, AWS S3, AWS Athena, AWS Kinesis and AWS Redshift / EMR
  • Google Cloud Platform (GCP): GCP Dataproc, GCP DataFlow, GCP BigQuery, GCP Cloud Storage, Cloud SQL and Pub Sub.
  • Other public cloud platforms such as Snowflake, Hadoop…
Qualifications:
  • Bachelor’s or Master’s degree in Engineering or Technology.
  • Proven track record of delivering enterprise Data solutions on a scale.
  • Strong understanding of Data models and Data pipelines and cloud-native data architectures.
  • Excellent communication, stakeholder management, and leadership skills.
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