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Principal Engineer - AI & Full Stack

Remote / Online - Candidates ideally in
Kitchener, Ontario, Canada
Listing for: Repromptai
Full Time, Remote/Work from Home position
Listed on 2026-03-01
Job specializations:
  • Software Development
    AI Engineer, Machine Learning/ ML Engineer, Data Scientist, Software Engineer
Job Description & How to Apply Below
Scispot is building the digital backbone for scientific discovery. We empower biotech teams by unifying lab operations, data flow, and AI-driven insights.

Role Overview

You will own our AIand full-stack engineering efforts

You will shape next generation features that help scientists run experiments faster

You will guide our platform's scalability and drive new integrations for lab instruments

How will you spend your time?

50% coding and system design (React, Python, Java +AI integration)

20% product iteration and user feedback loops

10% collaboration, planning, and roadmap refinement

10% data engineering, infrastructure and embedding strategies

10% LLM experimentation (prompting, AI pipelines, graph DBs, vector DBs)

What You’ll Do

Architect and Scale

Build robust backend services with intuitive UI/UX (React, Java Spring Boot, AWS, Kubernetes).

Develop new AI-based features for enterprise customers.

Elevate Our AI Stack

Enhance recommendation engines with prompt engineering and LLMs. Building AI pipelines with LLMs.

Introduce NLP for seamless instrument integration.

Drive Quality and Automation

Implement automated tests.

Oversee telemetry improvements.

Lead and Mentor

Collaborate with product, data, and design teams.

Grow a team of engineers focused on cutting-edge AI tools.

Required Skills

Proficiency in Java, Python, React &Javacript

Experience deploying to AWS (EKS, Lambda, or EC2).

Deep knowledge of AI pipelines, LLMs, and NLP libraries.

Familiarity with data stores (Open Search, vector databases, graph databases).

Strong leadership and communication skills.

Bonus Skills

Experience with scientific or biotech workflows.

Knowledge of advanced ETL, data streaming, or prompt engineering.

Your Two Year Roadmap
Month 1-6, you will:

Enhance Recommendation AI

Use prompt engineering and AI pipelines with LLMs for better suggestions.

Aim for performance and scalability.

Scale API and GLUE Layer

Build strong ETL support for enterprise loads.

Build SDK framework for Scispot APIs

Introduce NLP for Instrument Integration

Offer script templates so scientists can process data easily.

Suggest Telemetry Improvements

Improve monitoring for infrastructure health.

Graphical Chain of Custody

Let users query sample journeys with prompts using graph database

Month 7-12, you will:

EKS Migration

Grow &Maintain AWSEKScluster

Automated Testing

Increase backend unit test coverage.

MCP Layer for Recommendation

Allow AI agents to take simple actions for scientists.

Upgrade Search

Improve Open Search and vector databases.

Memory Layer for Agents

Reduce reliance on retrieval-augmented generation by building memory layer for AIagents

Month 13-24, you will:

Lead Core Application Team

Oversee tech vision, architecture, and development.

App Store for Instrument Connectors

Expose our instrument integrations in a user-friendly marketplace.

Tech Stack:

Frontend:
React JS and Typescript

Backend:
Elastic Search, AWS Lambda, Rabbit MQ, Mongo DB, S3, Java Spring Boot

Architecture:
Microservices integrated with Graph

QL and Rest APIs

AI

Infrastructure: Tensor Flow (Proprietary ML) , Azure AI Service, Azure Open AI service, AIPipelines, Programmatic Prompt Engineering

Ideal Candidate Profile:

Proficient with AWS and its suite of data services.

Hands-on experience with tools such as Lambda function, MQ, Java spring boot, Elastic Search, Python, Mongo DB, Dynamo DB, and S3 bucket.

Strong programming skills, particularly in Python, Java, React & Java script.

Good understanding of different Agentic AI architectures.

Good understanding of learning how to build AI pipelines with LLMs.

A solid grasp of microservices and associated best practices.

Experience in data engineering and orchestration is preferred.

Loves working in a fast paced startup environment.

Why Join Scispot?:

Work from anywhere but ideally based out of Canada.

Engage in challenging, impactful work in the realm of biotech data and AI.

Competitive stock options.

Unlimited growth upside.

Why You Might Love This Role

You want to shape the future of scientific research.

You enjoy solving complex AI challenges.

You like leading from the front, mentoring, and guiding teams.

A chance to build next-gen AI tools for lab workflows.

Leadership role with a high level of autonomy.

Why You Might Not

You dislike fast-paced startup environments.

You prefer strictly defined roles.

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