Senior AI/ML Engineer
Actively Reviewing the ApplicationsAaizel International Technologies Pvt Ltd
India, Haryana, Gurugram
Full-Time
INR 7–10 LPA
Posted 20 hours ago
•
Apply by June 29, 2026
Job Description
Job Title: Senior AI/ML Engineer/Team Lead
Location: Gurugram, Haryana
Employment Type: Full-Time
Experience: 4-7 Years
CTC: Up to 10LPA
About Aaizel Tech
Aaizel Tech is a pioneering tech startup at the intersection of cybersecurity, AI, geospatial solutions, and more. We drive innovation by delivering transformative technology solutions across industries. As a growing startup, we are looking for passionate and versatile professionals eager to work on cutting-edge projects in a dynamic environment.
Role Overview
As a Senior AI/ML Engineer at Aaizel Tech, you will lead the design, development, and deployment of advanced Machine Learning models and AI solutions. You will work on projects ranging from predictive analytics and NLP to computer vision and anomaly detection. You will also mentor a team of AI/ML professionals, collaborate with cross-functional teams, and drive innovation by integrating state-of-the-art research with scalable production systems.
Key Responsibilities
Backend Framework
Required Skills & Qualifications
Skills:- Python, Deep Learning, Machine Learning (ML), Large Language Models (LLM), Computer Vision, Docker, Transformer, Natural Language Processing (NLP), Neural networks, Pipeline management, CI/CD, MLOps and API management
Location: Gurugram, Haryana
Employment Type: Full-Time
Experience: 4-7 Years
CTC: Up to 10LPA
About Aaizel Tech
Aaizel Tech is a pioneering tech startup at the intersection of cybersecurity, AI, geospatial solutions, and more. We drive innovation by delivering transformative technology solutions across industries. As a growing startup, we are looking for passionate and versatile professionals eager to work on cutting-edge projects in a dynamic environment.
Role Overview
As a Senior AI/ML Engineer at Aaizel Tech, you will lead the design, development, and deployment of advanced Machine Learning models and AI solutions. You will work on projects ranging from predictive analytics and NLP to computer vision and anomaly detection. You will also mentor a team of AI/ML professionals, collaborate with cross-functional teams, and drive innovation by integrating state-of-the-art research with scalable production systems.
Key Responsibilities
- Model Development & Optimization
- Architect and develop end-to-end ML solutions for applications such as predictive analytics, anomaly detection, computer vision, and NLP.
- Utilize advanced techniques including deep learning (CNNs, RNNs), reinforcement learning, and generative models (GANs) to address complex challenges.
- Fine-tune model parameters using techniques such as hyperparameter tuning (Grid Search, Bayesian Optimization, Neural Architecture Search).
- Optimize models for both accuracy and inference speed to meet real-time processing requirements.
- Advanced Data Engineering & Integration
- Build robust ETL pipelines using libraries like Pandas, NumPy, and PySpark to process large-scale datasets from satellite imagery, IoT sensors, and real-time streams.
- Integrate data from diverse sources (APIs, databases, big data platforms like Hadoop and Apache Kafka) to support real-time analytics.
- Implement data cleansing, feature engineering, and transformation pipelines to ensure high-quality inputs for ML models.
- Research & Innovation
- Conduct research on state-of-the-art ML techniques including Transfer Learning, Transformer models, and AutoML to enhance model performance.
- Innovate new algorithms for specialized tasks such as geospatial analysis, environmental modeling, or cybersecurity threat detection.
- Develop proof-of-concept models and prototypes to validate new approaches before production deployment.
- Deployment, MLOps & Performance Monitoring
- Deploy models using containerization (Docker) and orchestration tools (Kubernetes) to ensure scalable and efficient production environments.
- Work with cloud platforms (AWS, Azure, GCP) and model serving solutions (TensorFlow Serving, ONNX, TorchServe) for high-throughput inference.
- Implement CI/CD pipelines for ML models, ensuring seamless updates and versioning.
- Develop monitoring dashboards (using Prometheus, Grafana) to track model performance and trigger retraining based on real-time feedback.
- Collaboration & Leadership
- Collaborate closely with data engineers, software developers, domain experts, and product managers to integrate AI solutions into end-to-end products.
- Provide technical leadership and mentorship to junior AI/ML engineers, ensuring adherence to coding standards and best practices.
- Participate in code reviews, maintain detailed documentation, and foster a culture of continuous learning.
Backend Framework
- Python (Django/FastAPI): Ideal for API integration, leveraging Python’s rich AI/ML ecosystem.
- PyTorch + Hugging Face Transformers + scikit-learn: For flexibility in research, multilingual NLP tasks, and classical ML pipelines.
- Apache Kafka + Apache Spark + Apache NiFi: To handle both real-time data streaming and batch processing.
- PostgreSQL with TimescaleDB extension: For structured and time-series data storage.
- Docker, Kubernetes, GitLab CI/CD, Prometheus/Grafana: For containerized deployments, continuous integration, and comprehensive monitoring.
- OpenCV, FFmpeg, Tesseract OCR, Wav2Vec2: To support image, video, and speech-to-text processing where needed.
Required Skills & Qualifications
- Experience:
- 4+ years in Machine Learning, AI research, or a related field with a proven track record of delivering production-level AI solutions.
- Programming & Frameworks:
- Expertise in Python and hands-on experience with frameworks like PyTorch, TensorFlow, and scikit-learn.
- Experience with Hugging Face Transformers for NLP applications.
- Data Engineering:
- Proficiency in building data pipelines using Pandas, NumPy, PySpark, and integrating data from diverse sources.
- Familiarity with big data platforms and real-time data processing frameworks.
- Model Deployment & MLOps:
- Hands-on experience with containerization (Docker), orchestration (Kubernetes), and CI/CD pipelines for ML models.
- Experience with cloud deployment and model serving solutions.
- Research & Innovation:
- Demonstrated ability to apply advanced ML techniques (deep learning, transfer learning, reinforcement learning) to solve real-world problems.
- Testing & Optimization:
- Strong background in model evaluation, hyperparameter tuning, and performance optimization.
- Exceptional problem-solving and analytical abilities.
- Strong communication skills, with the ability to present complex technical concepts to diverse stakeholders.
- Leadership and mentoring experience, with a collaborative approach to working in cross-functional teams.
- Ability to thrive in a fast-paced, dynamic environment and drive continuous innovation.
- Bachelor’s or Master’s degree in Computer Science, Data Science, Machine Learning, or a related field from a reputed institution.
- Innovative Projects: Engage in cutting-edge AI/ML projects that influence product strategy and technological innovation.
- Professional Growth: Opportunities for continuous learning, mentorship, and career advancement.
- Collaborative Culture: Work within a diverse team of experts passionate about pushing the boundaries of technology.
- Impactful Work: Play a key role in shaping AI-driven solutions and driving real-world impact.
Skills:- Python, Deep Learning, Machine Learning (ML), Large Language Models (LLM), Computer Vision, Docker, Transformer, Natural Language Processing (NLP), Neural networks, Pipeline management, CI/CD, MLOps and API management
Required Skills
Machine Learning
PostgreSQL
Python
Cloud Platforms
Apache Spark
AWS
Prototyping
Microsoft Azure
Google Cloud Platform
Docker
Kubernetes
GitLab
Prometheus
Grafana
Pandas
NumPy
Deep Learning
Natural Language Processing
Computer Vision
Predictive Analytics
TensorFlow
Scikit-learn
MLOps
Neural Networks
Reinforcement Learning
TimescaleDB
Hugging Face Transformers
OpenCV
GANs
AutoML
Apache Hadoop
Apache Kafka
ETL
Pipeline Management
Cybersecurity
Data Science
DevOps
CI/CD
Apache
NLP
Batch Processing
Performance optimization
Anomaly detection
Transfer learning
Cloud deployment
Threat detection
Adobe Illustrator
Preprocessing
TorchServe
Data platforms
Data pipelines
PySpark
Code quality
Apache Nifi
Stream processing
Model Deployment
Transformer Models
Computer Science
LLM
Feature Engineering
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