This is an unpaid internship opportunity. Are you still interested in the role? * What interests ... tokenization, semantic search Knowledge of LaTeX syntax and math rendering libraries (MathJax ...
This is an unpaid internship opportunity. Are you still interested in the role? * What interests ... tokenization, semantic search Knowledge of LaTeX syntax and math rendering libraries (MathJax ...
Analyst, Investor Relations
New York, NY · On-site
... custody, and tokenization technology. We also invest in and operate cutting-edge data center ... Internship or full-time experience in investment banking, equity research, corporate finance ...
Analyst, Investor Relations
New York, NY · On-site
... custody, and tokenization technology. We also invest in and operate cutting-edge data center ... Internship or full-time experience in investment banking, equity research, corporate finance ...
Internship Tokenization information
What kinds of projects do interns typically work on during a tokenization internship?
What is the difference between Internship Tokenization vs Data Analyst?
| Aspect | Internship Tokenization | Data Analyst |
|---|---|---|
| Required Credentials | Typically pursuing or recent graduate, some technical skills | Bachelor's or higher in data-related fields, certifications preferred |
| Work Environment | Internship setting, entry-level tasks, learning-focused | Full-time, office or remote, analytical and reporting tasks |
| Employer & Industry Usage | Tech, finance, startups, companies experimenting with blockchain | Finance, marketing, healthcare, tech industries |
Internship Tokenization involves entry-level roles focused on blockchain and digital assets, often for students or recent graduates. Data Analysts analyze data to inform business decisions. While both roles require analytical skills, Internship Tokenization emphasizes blockchain knowledge, whereas Data Analysts focus on data management and interpretation.
What is an internship tokenization?
What are the key skills and qualifications needed to thrive as an internship tokenization specialist, and why are they important?
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Job description
Accel Learning is a New Jersey-based tutoring and test-prep center serving 3,000+ students across K-12 and beyond. We prepare students for some of the most competitive exams in the country - SAT, ACT, ISEE, BCA, SSAT, HSPT, GRE, GMAT, Regents, NJSLA, OLSAT, SCAT, TerraNova, Praxis, PSEG, Math Olympiad, AMC, MathCounts, and more.
Our Mission: Make rigorous, personalized learning accessible. Today our instructors build question banks manually in WordPress. We're changing that by building an AI-powered question generation engine that creates exam-ready, curriculum-aligned questions at scale.
You will architect and implement the core AI pipeline that powers Accel's test creation system.
Work closely with the founder to design and build an AI-powered content generation system from the ground up. You'll contribute to meaningful parts of the product end-to-end from how the system ingests and understands source material, to how it produces and validates outputs, to how instructors interact with and review what the system generates.
On the engineering side, you'll build and iterate on LLM-driven pipelines, work with retrieval and embedding techniques to ground outputs in real source material and develop backend services and APIs that tie everything together.
Beyond pure coding, you'll be expected to think about output quality and building evaluation steps, catching failure modes, and improving the system based on real instructor feedback. You'll research new tools and techniques as the AI space evolves and bring relevant ideas directly into the product.
This is a generalist role at an early-stage product where you'll wear multiple hats, work with ambiguity, and have direct input into how things are built.
PLEASE NOTE THESE QUESTIONS AND REPLY WITH YOUR APPLICATION:
- This is an unpaid internship opportunity. Are you still interested in the role?
- What interests you most about this internship and this role? (Please share what excites you about contributing and what you hope to gain from the experience.)
- Tell us about the most interesting project you've worked on in this domain. What was the project, and what specific contributions did you make? (Include technologies, responsibilities, outcomes, or measurable impact if applicable.)
- How many hours per week are you available to commit to this internship?
- Are you currently based in the USA?
Strong foundation in software engineering: data structures, APIs, system design
Proficiency in Python (primary language for AI/ML pipeline work)
Experience with REST APIs and at least one database (PostgreSQL preferred)
Ability to work independently, ask sharp questions, and iterate fast
Strong debugging and problem-solving instincts
Demonstrated side projects or shipped code (GitHub portfolio required)
Genuine interest in AI systems and education technology
Direct experience with LLM APIs: OpenAI, Anthropic Claude, or Google Gemini
Hands-on experience with RAG systems: embedding models, vector databases (Pinecone,
Weaviate, pgvector, Chroma)
Familiarity with prompt engineering techniques: few-shot prompting, chain-of-thought,
structured JSON outputs
Experience with NLP pipelines: text chunking, tokenization, semantic search
Knowledge of LaTeX syntax and math rendering libraries (MathJax, KaTeX)
Experience with image generation APIs or SVG programmatic generation
Familiarity with AI evaluation frameworks or automated test harnesses for LLM outputs
Cloud platform experience: AWS, GCP, or Vercel for deployment
Experience with job queues: Celery, Bull, or similar
Exposure to educational content standards or psychometrics is a bonus
All your information will be kept confidential according to EEO guidelines.
About Accel Learning
Sourced by ZipRecruiter
Company size
201 - 500 Employees
Headquarters location
Secaucus, NJ, US
Year founded
2011