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TE ConnectivityElectronics

Digital Engineering - SW & AI

India , BANGALORE
Full-time
At TE, you will unleash your potential working with people from diverse backgrounds and industries to create a safer, sustainable and more connected world. 

Job Overview

Determines problems within specific systems and provides solutions, including designing new systems, platforms or test applications.

Job Requirements

    • Develop applications for automation, backend services, data processing, and user-facing solutions.
    • Build and integrate API-driven services across engineering tools, enterprise systems, and databases.
    • Design and implement data flows that connect Engineering evidence.
    • Develop modular and reusable software components.
    • Integrate AI/ML capabilities into engineering and business applications.
    • Support deployment of PoCs and manage the roll-out on-premises or at the cloud.
    • Work with engineering stakeholders on solutions which deliver clean data.
    • Apply structured development practices including code reviews, testing, documentation, release management, and version control.
    • Evaluate technology choices based on scalability, maintainability, reuse, and business value.
    • Maintain a feature-first approach, prioritizing usable functionality and simplicity while avoiding unnecessary architectural complexity and tool proliferation.
    • Take each task with full scope of responsibility and a hands-on mindset.

What your background should look like

  • 3-6  years of relevant professional experience in software development, AI/ML engineering, systems integration, engineering software, automation, or a related field.
  • Strong proficiency in Python and React for the frontend.
  • Practical experience with REST APIs, API-based integration, and service-oriented architectures (including MCP).
  • Strong understanding of SQL, relational data modeling, and database design.
  • Working knowledge of NoSQL databases and their appropriate use cases.
  • Good understanding of modular software architecture, reusable components, and separation of concerns.
  • Familiarity with cloud computing architectures (AWS and Azure).
  • Basic understanding of edge computing and distributed application architectures.
  • Working knowledge of machine learning and deep learning concepts, including model training, inference, evaluation, and deployment.
  • Familiarity with generative AI, LLM-based applications, AI agents, or AI-enabled workflow automation is desirable.
  • Working knowledge of Git and collaborative software development practices.
  • Understanding of software quality practices including testing, debugging, documentation, and code review.
  • Exposure to engineering, manufacturing, industrial automation, IoT, machine data, or process data.
  • Basic familiarity with CAD/CAE, simulation, digital twins, or model-based engineering.
  • Strong analytical and problem-solving capability with the ability to convert loosely defined requirements into implementable solutions.
  • Understanding of a scalable and adoptable UX design.

Competencies

Values: Integrity, Accountability, Inclusion, Innovation, Teamwork
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