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Urgent! AI Engineer - Cyber Security Start-up - Remote - LLM, MCP, Statistical Rigor, System Design and API in Production Scale Environment - CTC INR - 60 L Job Opening In ranchi – Now Hiring CareerXperts Consulting

AI Engineer Cyber Security Start up Remote LLM, MCP, Statistical Rigor, System Design and API in Production Scale Environment CTC INR 60 L



Job description

Job Description:


We are seeking a highly skilled and motivated AI Engineer with expertise in large language models (LLMs), AI workflows, and machine learning.

This role combines deep technical knowledge in ML/AI with hands-on experience building intelligent, production-ready systems that enhance cybersecurity investigation, prioritization, and response.

You will work at the intersection of LLM-driven automation, workflow orchestration, and classical ML models to improve how alerts are prioritized, classified, and contextualized—reducing fatigue and enabling faster, more effective decision-making.


Your work will directly influence the development of agentic AI systems, workflow automation, and recommendation engines within cloud security platform.


Key Responsibilities

LLM Integration & Workflows:

Build, fine-tune, and integrate large language models (LLMs) into existing systems.

Develop agentic workflows for investigation, classification, and automated response in cybersecurity.

Apply techniques like retrieval-augmented generation (RAG), prompt engineering, and fine-tuning for domain-specific tasks.


Machine Learning Development:

Design, implement, and optimize ML models for prioritization, ranking, clustering, anomaly detection, and classification.

Apply both classical forecasting models (AR, ARIMA, SARIMA, ES) and modern architectures (XGBoost, LSTM, DeepAR, N-BEATS, Temporal Fusion Transformer).


Data Preparation & Feature Engineering:

Collect, preprocess, and transform structured and unstructured data (including logs, text, and access patterns).

Engineer features to maximize model interpretability and performance.


Model Training, Evaluation, and Deployment:


Train and evaluate models using rigorous metrics (precision, recall, AUC, F1, etc.).

Optimize hyperparameters and fine-tune LLMs for task-specific improvements.

Deploy ML/LLM models into production at scale with strong monitoring, drift detection, and observability.


Collaboration & Documentation:


Work closely with data scientists, ML engineers, security researchers, and software teams to build end-to-end solutions.


Document models, workflows, and pipelines for clarity, reproducibility, and knowledge sharing.



Requirements


Bachelor’s/Master’s degree in Computer Science, AI/ML, Data Science, or a related field.


5+ years of experience in ML/AI, including 3+ years deploying production-grade systems.


Experience contributing to publications (patents, libraries, or peer-reviewed papers) is a plus.


Strong knowledge of machine learning algorithms for classification, clustering, ranking, and anomaly detection.


Proficiency with LLM frameworks and APIs (OpenAI, Hugging Face Transformers, LangChain, LlamaIndex).


Hands-on experience building workflow automation with LLMs and integrating them into applications.


Solid programming skills in Python (experience with PyTorch, TensorFlow, scikit-learn).


Knowledge of NLP tasks (text classification, summarization, embeddings, semantic search).


Experience with recommendation systems or reinforcement learning is a strong plus.


Proven track record of deploying ML/AI models into production environments with scalability in mind.


Familiarity with cloud platforms (AWS, GCP, Azure), containerization (Docker, Kubernetes).


Understanding of MLOps best practices (CI/CD for ML, monitoring, retraining strategies).


Strong problem-solving and analytical mindset.


Excellent communication and teamwork skills.


Ability to work in a fast-paced, evolving startup environment.


Write to me at for more details.


Required Skill Profession

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