Siemens Off Campus Drive 2025 – Graduate Trainee
Siemens Off
On-siteOff Campus8/13/2025
Full Time0As Per Company Standards
Job Description
About Siemens Off
Siemens Off is looking for talented individuals to join our growing team. We offer a collaborative environment where innovation thrives and career growth is supported.
Role Details
Graduate Trainee Engineer – Junior Software Developer – AI/ML:
Master’s or Bachelor’s degree in Computer Science, Machine Learning, AI, or a related field.
Exposure in AI/ML, with knowlegde in NLP and Generative AI.
Strong understanding of LLM architectures, fine-tuning methods (LoRA, PEFT), embeddings, and vector search.
Experience in designing and deploying RAG pipelines and working with multi-step agent architectures.
Proficiency in Python and frameworks like Lang Chain, Transformers (Hugging Face), Llama Index, Smol Agents, etc.
Familiarity with ML observability and explainability tools (e.g., Tru Era, Arize, Why Labs).
Knowledge of cloud-based ML services like AWS Sagemaker, AWS Bedrock, Azure OpenAI Service, Azure ML Studio, and Azure AI Foundry.
Experience in integrating LLM-based agents in production environments.
Understanding of real-time NLP challenges (streaming, latency optimization, multi-turn dialogues).
Familiarity with Lang Graph, function calling, and tools for orchestration in agent-based systems.
Exposure to infrastructure-as-code (Terraform/CDK) and DevOps for AI pipelines.
Domain knowledge in Electrification, Energy, or Industrial AI is a strong plus
You’ll make an impact by:
Design, develop, and optimize NLP-driven AI solutions using state-of-the-art models and
techniques (NER, embeddings, summarization, etc.).
Build and productionize RAG pipelines and agentic workflows to support intelligent, context aware applications.
Fine-tune, prompt-engineer, and deploy LLMs (OpenAI, Anthropic, Falcon, LLaMA, etc.) for domain-specific use cases.
Collaborate with data scientists, backend developers, and cloud architects to build scalable AI first systems.
Evaluate and integrate third-party models/APIs and open-source libraries for generative use cases.
Continuously monitor and improve model performance, latency, and accuracy in production settings.
Implement observability, performance monitoring, and explainability features in deployed models.
Ensure solutions meet enterprise-level requirements for reliability, traceability, and maintainability
Requirements
- •0
- •Strong technical and problem-solving skills
- •Excellent communication and teamwork abilities
- •Bachelor's degree or equivalent experience
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