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Siemens Energy Hiring AI/Machine Learning Engineer

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Siemens Energy is hiring for the AI/Machine Learning Engineer role in Gurgaon, Haryana. This is a full-time entry-level opportunity for fresh graduates and early-career candidates interested in Artificial Intelligence, Machine Learning, NLP, Generative AI, and backend AI systems.

This opportunity is especially valuable for candidates wanting hands-on exposure to:

  • Machine Learning Pipelines
  • Generative AI
  • RAG Applications
  • NLP Workflows
  • AI Product Deployment

If you want to work on AI solutions in the energy sector and contribute to large-scale industrial transformation, this role is worth considering.

Siemens Energy Hiring AI/Machine Learning Engineer

About the Company

Siemens Energy is one of the world’s leading energy technology companies, operating in more than 90 countries with around 100,000 employees worldwide.

The company focuses on:

  • Energy generation
  • Power transmission
  • Decarbonization
  • Grid modernization
  • Renewable energy solutions

Siemens Energy contributes to approximately one-sixth of global electricity generation, making it a major player in the energy industry.

Its mission is to make energy:

  • Sustainable
  • Reliable
  • Affordable

Key Responsibilities

ML Pipeline Development

You will assist in building ML pipelines covering:

  • Data preprocessing
  • Model training
  • Evaluation
  • Inference

This includes preparing data and ensuring models perform reliably in production.

Generative AI & RAG Workflows

One of the most exciting parts of this role is working with Generative AI.

You may support:

  • LLM-based workflows
  • Prompt engineering
  • RAG systems
  • AI assistants

RAG (Retrieval-Augmented Generation) helps AI systems retrieve relevant context before generating responses.

This is highly relevant for enterprise AI applications.

NLP Engineering

You will work on text-related AI tasks such as:

  • Data cleaning
  • Parsing
  • Chunking
  • Embeddings
  • Semantic search

This helps build intelligent systems for processing documents and business knowledge.

Backend API Development

You will help expose AI functionality via APIs using frameworks like:

  • FastAPI

These APIs allow applications to interact with ML models.

Typical use cases:

  • Prediction APIs
  • Chat assistants
  • Search systems
  • AI automation tools

Model Optimization

You will help improve:

  • Accuracy
  • Latency
  • Scalability
  • Reliability

Optimization ensures AI systems remain efficient in production.

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Required Technical Skills

Python Programming

Strong Python knowledge is essential.

Python is widely used for:

  • ML development
  • Data analysis
  • Backend APIs
  • AI workflows

You should know:

  • Functions
  • OOP
  • Data structures
  • Debugging

Machine Learning Fundamentals

You need a solid understanding of:

  • Supervised learning
  • Unsupervised learning
  • Overfitting
  • Evaluation metrics

Common algorithms include:

  • Regression
  • Classification
  • Clustering

AI/ML Libraries

Expected exposure to:

  • NumPy
  • Pandas
  • scikit-learn

Preferred deep learning exposure:

  • PyTorch
  • TensorFlow

These libraries are used for training and evaluating models.

Generative AI Knowledge

Bonus if you understand:

  • Large Language Models (LLMs)
  • Prompt engineering
  • Vector embeddings
  • Retrieval systems

Knowledge of GenAI makes you highly competitive.

Backend & APIs

Basic backend knowledge is important.

You should understand:

  • REST APIs
  • Request-response lifecycle
  • Authentication basics

API integration is critical in AI production systems.

Cloud Knowledge

Bonus if you have exposure to:

  • Amazon Web Services
  • Microsoft Azure

Cloud knowledge helps with:

  • Deployment
  • Scaling
  • Storage
  • Model serving

Version Control

Knowledge of:

  • Git

Useful for:

  • Collaboration
  • Code management
  • Reviews

Educational Qualification

Eligible candidates typically have degrees in:

  • Computer Science
  • Information Technology
  • AI / ML
  • Data Science
  • Related engineering fields

Fresh graduates with strong projects can apply.

Company Rating & Reviews

Overall Rating: ⭐⭐⭐⭐☆ (4.4/5)

What Employees Like

  • Strong global brand value
  • Excellent learning opportunities
  • Good work-life balance
  • Exposure to industrial-scale technology
  • Stable career growth

Things to Consider

  • Enterprise workflows can be process-heavy
  • Some teams move slower than startups
  • Cross-team collaboration can be complex

Best for: Candidates looking for long-term growth in AI + enterprise technology.

Salary

Siemens Energy has not officially disclosed salary for this role.

Estimated Salary (Based on similar entry-level AI/ML roles)

Salary ComponentEstimated Range
Annual CTC₹8 – ₹18 LPA
Monthly Equivalent₹66,000 – ₹1.5L/month

Salary may vary based on:

  • Education
  • AI/ML projects
  • Python expertise
  • NLP knowledge
  • Interview performance

Soft Skills Required

Siemens Energy values candidates who can:

Learn Quickly

AI evolves rapidly, so adaptability matters.

Solve Problems

You should break complex problems into manageable parts.

Collaborate

AI development requires teamwork across technical and business teams.

Communicate Clearly

Explaining AI systems simply is an important skill.

How to Apply

Before applying:

  • Update resume
  • Highlight AI/ML projects
  • Add GitHub links
  • Mention GenAI experiments
  • Showcase cloud/API exposure

Candidates with practical projects usually stand out.

Disclaimer:
This information is collected from official/public sources for informational purposes only. Salary estimates are based on market research and may vary. We do not charge any fee for job updates and do not guarantee selection or recruitment. Candidates should verify details from the official source before applying.

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