Website:
mycareernet.co
Job details:
Key Skills: Gen AI, Api Gateway, Lang chain, Lang graph, Python, Gemini, Machine Learning, GCP, NLP, MLOps
Roles and Responsibilities:
- Explore, clean, and analyse large, complex datasets to uncover patterns, trends, and opportunities that drive actionable insights.
- Develop, train, and validate machine learning, statistical, and predictive models that solve real business problems and deliver measurable impact.
- Design and run experiments (A/B tests, hypothesis tests, simulations) to evaluate ideas, quantify outcomes, and guide decision-making.
- Collaborate with data engineers, analysts, product managers, and domain experts to translate business requirements into well-defined modelling tasks.
- Build end-to-end ML pipelines--from feature engineering and preprocessing to deployment-ready model outputs.
- Apply advanced techniques such as NLP, time-series forecasting, anomaly detection, optimisation, or LLM/GenAI methods where relevant.
- Implement model evaluation frameworks using offline metrics, cross-validation, online experiments, and human-in-the-loop feedback loops.
- Communicate insights clearly through dashboards, visualisations, written summaries, and presentations tailored to technical and non-technical stakeholders.
- Ensure models are interpretable and explainable where required, providing transparency into key drivers and assumptions.
- Work with engineering teams to deploy models into production, monitor performance, and retrain or recalibrate as data and conditions change.
Skills Required:
- Hands-on experience with GenAI, Gemini or Open source LLMs and develop GenAI applications for Code Translation, Text Extraction, Summarisation and SDLC Optimization etc.
- Hands-on Experience with AI Agents, Chat bots, RAG (Retrieval-Augmented Generation), and vector databases. ( PG vector / croma DB )
- Hands-on Experience with GenAI Performance Evaluation tools like Pegasus, Ragas, DeepEval
- Create Conversational Interface with React JS or other Frontend components, Develop and deploy AI agents using LangGraph and ADK, A2A, MCP
- Strong programming skills in Python (experience with LangChain/LangGraph / LangSmith frameworks) and TypeScript ( preferable )
- Solid understanding of LLMs, prompt engineering, and graph-based workflows.
- Knowledge and implementation of Input and Output guardrails in addressing Hallucination, PII filtering, HAP and Bias etc.
- Implemented security best practices, Experience to address spikes and Denial of wallet attacks, DDoS attack and other Spike arrest strategies
- Knowledge of API Gateways and ISTIO , ability to Diagnose and intercept failures in End to End communication
- Hands-on Experience with API Development and Microservices architecture
Desirable skills/knowledge/experience:
- Strong experience applying machine learning, statistical modelling, and predictive analytics to real-world business problems.
- Collaborate with cross-functional teams to ability to resolve end to end connectivity and Data Integrations
- Experience working with large, complex datasets, including data cleaning, feature engineering, and exploratory data analysis.
- Familiarity with LLMs, NLP techniques, and GenAI frameworks, including embeddings, prompt engineering, or fine-tuning.
- Experience building end-to-end ML pipelines, including model validation, optimisation, deployment, and monitoring.
- Understanding of MLOps practices, including model versioning, model registries, CI/CD for ML, and automated training/inference workflows.
- Ability to translate business problems into analytical tasks and communicate insights in a clear, concise manner to technical and non-technical audiences.
- Knowledge of data governance, including data quality, lineage, ethics, privacy considerations, and responsible AI principles.
- Comfort working with cloud platforms (GCP preferred) for model training, deployment, and scalable compute.
- A growth-oriented mindset with enthusiasm for exploring new algorithms, tools, and emerging AI/ML techniques
Education: Bachelor's or Master's degree in Engineering
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