Agentic AI Engineer

Reposted 9 Hours Ago
2 Locations
Remote
Expert/Leader
Big Data • Analytics • Business Intelligence • Big Data Analytics
The Role
The Agentic AI Engineer is responsible for deploying, executing, and improving Machine Learning solutions, creating scalable systems, and collaborating with teams to drive strategy and business value through analytics.
Summary Generated by Built In

Tiger Analytics is looking for experienced Agentic AI Engineer with Gen AI experience to join our fast-growing advanced analytics consulting firm. Our employees bring deep expertise in Machine Learning, Data Science, and AI. We are the trusted analytics partner for multiple Fortune 500 companies, enabling them to generate business value from data. Our business value and leadership has been recognized by various market research firms, including Forrester and Gartner.

We are looking for top-notch talent as we continue to build the best global analytics consulting team in the world. You will be responsible for:

  • Providing solutions for the deployment, execution, validation, monitoring, and improvement of MLE solutions
  • Creating Scalable Machine Learning systems .
  • Building reusable production data pipelines for implemented machine learning models
  • Writing production-quality code and libraries that can be packaged as containers, installed and deployed

You will collaborate with cross-functional teams and business partners and will have the opportunity to drive current and future strategy by leveraging your analytical skills as you ensure business value and communicate the results.


Requirements

Technical Skills Required:

·        Programming Languages: Proficiency in Python is essential.

·        Agentic AI : Expertise in LangChain/LangGraph, CrewAI, Semantic Kernel/Autogen and Open AI Agentic SDK

·        Machine Learning Frameworks: Experience with TensorFlow, PyTorch, Scikit-learn, and AutoML.

·        Generative AI: Hands-on experience with generative AI models, RAG (Retrieval-Augmented Generation) architecture, and Natural Language Processing (NLP).

·        Cloud Platforms: Familiarity with AWS (SageMaker, EC2, S3) and/or Google Cloud Platform (GCP).

·        Data Engineering: Proficiency in data preprocessing and feature engineering.

·        Version Control: Experience with GitHub for version control.

·        Development Tools: Proficiency with development tools such as VS Code and Jupyter Notebook.

·        Containerization: Experience with Docker containerization and deployment techniques.

·        Data Warehousing: Knowledge of Snowflake and Oracle is a plus.

·        APIs: Familiarity with AWS Bedrock API and/or other GenAI APIs.

·        Data Science Practices: Skills in building models, testing/validation, and deployment.

·        Collaboration: Experience working in an Agile framework.

Desired Skills:

·        RAG Architecture: Experience with data ingestion, data retrieval, and data generation using optimal methods such as hybrid search.

·        Insurance/Financial Domain: Knowledge of the insurance industry is a big plus.

·        Google Cloud Platform: Working knowledge is a plus.

Additional Expertise:

·        Industry Experience: 8+ years of industry experience in AI/ML and data engineering, with a track record of working in large-scale programs and solving complex use cases using GCP AI Platform/Vertex AI.

·        Agentic AI Architecture: Exceptional command in Agentic AI architecture, development, testing, and research of both Neural-based & Symbolic agents, using current-generation deployments and next-generation patterns/research.

·        Agentic Systems: Expertise in building agentic systems using techniques including Multi-agent systems, Reinforcement learning, flexible/dynamic workflows, caching/memory management, and concurrent orchestration. Proficiency in one or more Agentic AI frameworks such as LangGraph, Crew AI, Semantic Kernel, etc.

·        Python Proficiency: Expertise in Python language to build large, scalable applications, conduct performance analysis, and tuning.

·        Prompt Engineering: Strong skills in prompt engineering and its techniques including design, development, and refinement of prompts (zero-shot, few-shot, and chain-of-thought approaches) to maximize accuracy and leverage optimization tools.

·        IR/RAG Systems: Experience in designing, building, and implementing IR/RAG systems with Vector DB and Knowledge Graph.

·        Model Evaluation: Strong skills in the evaluation of models and their tools. Experience in conducting rigorous A/B testing and performance benchmarking of prompt/LLM variations, using both quantitative metrics and qualitative feedback.


Benefits

This position offers an excellent opportunity for significant career development in a fast-growing and challenging entrepreneurial environment with a high degree of individual responsibility.

Skills Required

  • Proficiency in Python is essential
  • Expertise in LangChain/LangGraph, CrewAI, Semantic Kernel, Open AI Agentic SDK
  • Experience with TensorFlow, PyTorch, Scikit-learn, AutoML
  • Hands-on experience with generative AI models and NLP
  • Familiarity with AWS and/or Google Cloud Platform
  • Proficiency in data preprocessing and feature engineering
  • Experience with GitHub for version control
  • Proficiency with VS Code and Jupyter Notebook
  • Experience with Docker containerization
  • Knowledge of Snowflake and Oracle is a plus
  • Familiarity with AWS Bedrock API and/or other GenAI APIs
  • Skills in building models, testing/validation, and deployment
  • Experience working in an Agile framework

Tiger Analytics Compensation & Benefits Highlights

The following summarizes recurring compensation and benefits themes identified from responses generated by popular LLMs to common candidate questions about Tiger Analytics and has not been reviewed or approved by Tiger Analytics.

  • Fair & Transparent Compensation Feedback suggests pay is viewed as fair and market-aligned for many roles and geographies. Consistent, on-time pay and competitive packages in key markets reinforce a generally positive baseline.
  • Healthcare Strength Feedback suggests U.S. medical coverage is strong, with administration via a known benefits platform and plan options seen positively. Health insurance is often regarded as a bright spot within the package.
  • Leave & Time Off Breadth Feedback suggests generous PTO, paid sick days and holidays, and flexible PTO alongside remote-work options. These elements indicate broad time-off provisions available on paper.

Tiger Analytics Insights

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The Company
Bengaluru, Bengaluru
5,000 Employees
Year Founded: 2011

What We Do

Tiger Analytics is a global leader in AI and Analytics, helping Fortune 1000 companies solve their toughest challenges. We offer fullstack AI and analytics services & solutions to empower businesses to achieve real outcomes and value at scale. We are on a mission to push the boundaries of what AI and analytics can do to help enterprises navigate uncertainty and move forward decisively. Our purpose is to provide certainty to shape a better tomorrow. Our team of 4000+ technologists and consultants are based in the US, Canada, the UK, India, Singapore, and Australia, working closely with clients across CPG, Retail, Insurance, BFS, Manufacturing, Life Sciences, and Healthcare. We are Great Place to Work-Certified™ and have been recognized by analyst firms such as Forrester, Gartner, Everest, ISG, HFS, and others. Ranked among the ‘Best’ and ‘Fastest Growing’ analytics firms lists by Inc., Financial Times, Economic Times and Analytics India Magazine. In India, our offices are located in Chennai, Hyderabad and Bangalore.

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