AGM-Data Engineer
Hyderabad, IN
Role Overview:
We are seeking a highly skilled and motivated Senior Data Scientist with deep expertise in Generative AI, Machine Learning, Deep Learning, and advanced Data Analytics. The ideal candidate will have hands-on experience in building, deploying, and maintaining end-to-end ML solutions at scale, preferably within the Telecom domain.
You will be part of our AI & Data Science team, working on high-impact projects ranging from customer analytics, network intelligence, churn prediction, to generative AI applications in telco automation and customer experience.
Key Responsibilities:
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Design, develop, and deploy advanced machine learning and deep learning models for Telco use cases such as:
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Network optimization
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Customer churn prediction
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Usage pattern modeling
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Fraud detection
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GenAI applications (e.g., personalized recommendations, customer service automation)
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Lead the design and implementation of Generative AI solutions (LLMs, transformers, text-to-text/image models) using tools like OpenAI, Hugging Face, LangChain, etc.
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Collaborate with cross-functional teams including network, marketing, IT, and business to define AI-driven solutions.
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Perform exploratory data analysis, feature engineering, model selection, and evaluation using real-world telecom datasets (structured and unstructured).
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Drive end-to-end ML solution deployment into production (CI/CD pipelines, model monitoring, scalability).
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Optimize model performance and latency in production, especially for real-time and edge applications.
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Evaluate and integrate new tools, platforms, and AI frameworks to advance Vi’s data science capabilities.
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Provide technical mentorship to junior data scientists and data engineers.
Required Qualifications & Skills:
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8+ years of industry experience in Machine Learning, Deep Learning, and Advanced Analytics.
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Strong hands-on experience with GenAI models and frameworks (e.g., GPT, BERT, Llama, LangChain, RAG pipelines).
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Proficiency in Python, and libraries such as scikit-learn, TensorFlow, PyTorch, Hugging Face Transformers, etc.
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Experience in end-to-end model lifecycle management, from data preprocessing to production deployment (MLOps).
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Familiarity with cloud platforms like AWS, GCP, or Azure; and ML deployment tools (Docker, Kubernetes, MLflow, FastAPI, etc.).
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Strong understanding of SQL, big data tools (Spark, Hive), and data pipelines.
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Excellent problem-solving skills with a strong analytical mindset and business acumen.
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Prior experience working on Telecom datasets or use cases is a strong plus.
Preferred Skills:
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Experience with vector databases, embeddings, and retrieval-augmented generation (RAG) pipelines.
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Exposure to real-time ML inference and streaming data platforms (Kafka, Flink).
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Knowledge of network analytics, geo-spatial modeling, or customer behavior modeling in a Telco environment.
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Experience mentoring teams or leading small AI/ML projects.