Sr Data Engineer & ML Engineer - Deloitte (Bengaluru)

Sr Data Engineer & ML Engineer - Deloitte (Bengaluru)

23 Sep
|
TRIGENT SOFTWARE PRIVATE
|
Bengaluru

23 Sep

TRIGENT SOFTWARE PRIVATE

Bengaluru

Details for Senior Data Engineer Role Skills highlighted in yellow are must have skills. Skills highlighted in blue are good to have skills. Job Description: Senior Data Engineer & Machine Learning Engineer Role Overview We are seeking a highly experienced, versatile Data Engineer & Machine Learning Engineer to bridge the gap between advanced data science, full-stack software engineering, and production-grade ML operations (MLOps). In this role, you will design, build, and deploy scalable machine learning models and full-stack applications. You will collaborate closely with business stakeholders to translate complex technical capabilities into strategic business value, while leveraging cutting-edge AI-assisted development workflows to accelerate delivery. Key Responsibilities System Architecture & Development: Architect, develop, and maintain robust, full-stack applications and machine learning pipelines, ensuring high availability, scalability, and performance. MLOps & CI/CD Pipeline Orchestration: Design and manage end-to-end Software Development Life Cycle (SDLC) pipelines, implementing Continuous Integration, Continuous Delivery, and Continuous Training (CI/CD/CT) workflows. Stakeholder Collaboration: Partner directly with business clients and non-technical stakeholders to understand requirements, present technical roadmaps, and explain complex AI/ML features in an accessible, impact-driven manner. Code Governance & Mentorship: Lead code reviews, provide constructive feedback on merge requests, and champion engineering best practices across the team. Data Engineering & Architecture: Design and optimize data ingestion, transformation, and persistence layers, selecting the appropriate storage paradigms (SQL vs. NoSQL) and search technologies to support real-time and batch processing. AI-Assisted Engineering: Pioneer the integration of AI-assisted coding tools and "vibe-coding" methodologies into the team's workflow, establishing guardrails, context engineering standards, and validation frameworks to ensure code safety and reliability.



Data Governance & Security: Implement strict data protection, data minimization, and classification standards to ensure compliance with global regulatory frameworks. Required Technical Skills & Qualifications Core Software Engineering & Architecture Experience: 4-8 years of full-stack software engineering experience in an enterprise or production environment. Design Patterns: Deep understanding of object-oriented and functional design patterns, with a proven ability to write clean, modular, and testable code. Polyglot Programming: Proficiency in a diverse set of programming languages: Python (for data science, modeling, and scripting) Java (for enterprise-grade backend services) JavaScript / TypeScript (for full-stack integration and modern web frameworks) SQL (for complex data querying and relational database management) Shell Scripting (for system automation and environment configuration) Cloud, DevOps & Infrastructure AWS Ecosystem: Extensive experience deploying, configuring, monitoring, and troubleshooting full-stack applications and ML workloads in Amazon Web Services (AWS) (e.g., SageMaker, ECS/EKS, Lambda, S3, and IAM). CI/CD Platforms: Hands-on experience orchestrating automated build, test, and deployment pipelines using the GitLab platform. Data Engineering & Governance Data Management: Robust grasp of modern data ingestion, ETL/ELT pipelines, and data persistence strategies, including relational (SQL), non-relational (NoSQL), and search indexing technologies. Data Security: Solid understanding of best practices for data protection, data minimization, and data classification. Next-Generation AI & Vibe-Coding Practices AI-Assisted Tooling: Practical experience utilizing AI-assisted coding platforms (e.g., Cursor, GitHub Copilot, Windsurf) to optimize development velocity. Vibe-Coding & Context Engineering: Advanced understanding of AI-driven development paradigms ("vibe-coding"), including context window management, prompt structuring, iterative refinement, and the implementation of strict validation guardrails to prevent silent code failures or security vulnerabilities.

📌 Sr Data Engineer & ML Engineer - Deloitte (Bengaluru)
🏢 TRIGENT SOFTWARE PRIVATE
📍 Bengaluru

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