AI Engineer Jobs at Tiger Analytics with Visa Sponsorship
AI Engineer jobs at Tiger Analytics involve building and deploying machine learning systems across client engagements in data-intensive industries. The company has an established sponsorship track record for this function, supporting candidates through H-1B visa, OPT, and longer-term immigrant visa pathways as part of its technical hiring process.
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INTRODUCTION
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.
ROLE AND RESPONSIBILITIES
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.
BASIC QUALIFICATIONS
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.
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Get Access To All JobsTips for Finding AI Engineer Jobs at Tiger Analytics
Tailor your portfolio to client-facing ML work
Tiger Analytics delivers analytics solutions for enterprise clients, so AI Engineer candidates who showcase deployed models, production pipelines, or measurable business outcomes stand out more than those with research-only backgrounds.
Verify your OPT start date before applying
If you're on F-1 OPT, confirm your employment start date aligns with Tiger Analytics' project onboarding cycles. Starting too close to your OPT expiration leaves little buffer if H-1B cap filing gets delayed by a few weeks.
Search open AI Engineer roles on Migrate Mate
Use Migrate Mate to filter AI Engineer openings at Tiger Analytics by visa type, so you're only engaging with roles where your specific work authorization is already confirmed as supported before you apply.
Ask about PERM timing during the offer stage
Tiger Analytics sponsors EB-2 and EB-3 green cards for long-term hires. Ask your recruiter early whether the AI Engineer role qualifies for sponsored PERM labor certification, since PERM processing with DOL currently runs over a year.
Prepare for technical screens focused on applied AI
Tiger Analytics interviews emphasize practical system design and applied machine learning over algorithmic puzzles. Review end-to-end ML system design, model monitoring, and data pipeline architecture before your technical rounds.
Confirm cap-gap coverage if your OPT ends mid-year
If your OPT expires before October 1 and Tiger Analytics has filed your H-1B petition, USCIS cap-gap rules let you keep working through September 30. Get written confirmation from HR that the petition was filed before your status lapses.
Frequently Asked Questions
Does Tiger Analytics sponsor H-1B visas for AI Engineers?
Yes, Tiger Analytics sponsors H-1B visas for AI Engineer roles. The company participates in the annual H-1B cap lottery each April and has a consistent pattern of sponsoring technical hires in data and AI functions. If you're already on H-1B with another employer, Tiger Analytics can also file an H-1B transfer, which lets you start working as soon as the petition is received by USCIS.
How do I apply for AI Engineer jobs at Tiger Analytics?
Apply directly through Tiger Analytics' careers page or through Migrate Mate, where you can filter AI Engineer openings by the visa types Tiger Analytics supports. When applying, highlight hands-on experience with production ML systems, cloud platforms, and client-facing delivery. Tiger Analytics' hiring process typically includes a recruiter screen, a technical assessment, and one or more system design interviews before an offer is extended.
Which visa types does Tiger Analytics commonly use for AI Engineers?
Tiger Analytics sponsors H-1B, F-1 OPT, F-1 CPT, TN visa, EB-2, and EB-3 visas for AI Engineer roles. OPT and CPT are used for early-career candidates, while H-1B is the primary long-term work visa. TN visa is available for Canadian and Mexican nationals in qualifying specialty occupations. For permanent residency, Tiger Analytics pursues PERM labor certification through the DOL as a pathway to EB-2 or EB-3 Green Card sponsorship.
What qualifications does Tiger Analytics expect for AI Engineer roles?
Tiger Analytics typically looks for a bachelor's or master's degree in computer science, data science, or a related engineering field, combined with practical experience building and deploying machine learning models. Proficiency in Python, familiarity with cloud environments such as AWS or Azure, and experience with MLOps tooling carry significant weight. Candidates with consulting or client-delivery backgrounds, where they've translated analytical work into business outcomes, are particularly well-positioned for this role.
How do I time my H-1B filing if I'm already working at Tiger Analytics on OPT?
Tiger Analytics needs to submit your H-1B registration during the USCIS lottery window in March. If selected, the petition is filed by June 30, with an October 1 start date. If your OPT expires before October 1 and you have a valid STEM OPT extension, you may be covered through cap-gap. Confirm your OPT end date with HR well before March so there's no gap in work authorization.