Jobs Companies Clarity AI AI Engineer

Über diese AI Engineer Stelle bei Clarity AI

Clarity AI · Remote · Remote

About Clarity AI 🪴

Clarity AI is a global tech company founded in 2017 with a unique mission: bringing societal impact to markets.

We leverage AI and machine learning technologies to provide top international investors, governments, companies, and consumers with the right data, methodologies, and tools to make more informed decisions. 

We are now a team of more than 300 highly passionate and curious individuals from all over the world, with offices in New York, Madrid, London, Paris, and Abu Dhabi. Together, we have established Clarity AI as a leading sustainability tech AI company backed by investors and strategic partners such as BlackRock, SoftBank, and Deutsche Börse, who believe in us and share our goals. 

We are dedicated to cultivating an exceptional workplace environment, and we take pride in our culture, defined by our commitment to being fact-based, diverse, transparent, meritocratic, and flexible. 

We have plans to continue growing our teams globally, so if you would like to join us on this rocket ship, keep reading! Your work will shape and guide the sustainable decisions of investors, companies and consumers worldwide.

About The Role 💻 

We are looking for an AI Engineer who thrives at the intersection of rapid experimentation and agile product development. In this role, you will be the bridge between the latest AI developments and tangible product impact. You aren't just following a roadmap; you are helping define it by proving what is possible with the latest frontier models and architectures. You will be responsible for the "quality loop": moving from a promising proof-of-concept to a highly reliable, optimized, and validated product.

What You’ll Be Doing 🚀

As an AI engineer, you will be responsible for:

  • Product-Centric Development: Designing and executing experiments to improve GenAI capabilities. This isn't just about "accuracy" in a vacuum—it's about optimizing for user value, reliability, and cost-effectiveness.
  • Evaluation Systems: Building the "Golden Path" for quality. You will design and implement robust, multi-dimensional evaluation suites (e.g., using "LLM-as-a-judge," semantic checks, and unit tests) to ensure our features are production-ready and hallucination-resistant.
  • Advanced RAG & Reasoning Optimization: Moving beyond "naive RAG." You will implement and tune advanced retrieval strategies (e.g., hybrid search, reranking, agentic retrieval) and optimize complex reasoning loops (e.g., CoT, ReAct) to make our current and future agents smarter and more reliable.
  • Production-Grade Model Tuning: Leading the strategy for when, and if, to move beyond simple prompting. You will oversee supervised fine-tuning (SFT) and Parameter-Efficient Fine-Tuning (LoRA) workflows to adapt models to our specific product domains.
  • Performance & Cost Engineering: Balancing the "Quality-Cost-Latency" triangle. You will find ways to maintain high-quality outputs while optimizing token usage and reducing inference latency.

Location 🌍 

The role is based in Spain

Way of Working: Remote / Hybrid 

What You’ll Need 👀

  • Applied MLE Background: You have a proven track record of shipping Machine Learning functionality in a product-focused environment. You prefer "what works in practice" over "what works in theory."
  • Bleeding-Edge Awareness: You are a "first adopter" of new AI technologies. You are intimately familiar with the trade-offs between frontier models and know how to swap or hybridize them for maximum impact.
  • Experimental & Analytical Mindset: You understand the importance of controlled experiments. You know how to design a benchmark, create a "Gold Dataset," and use data to prove that a new prompt or model is an actual improvement.
  • Practical LLM Expertise: Deep, hands-on experience with LLM orchestration, vector databases, and evaluation frameworks.
  • Technical Stack Mastery: Expert-level Python and experience writing production-grade code.
  • Product Mindset: You think about the user. You can identify when a model’s behavior might be technically correct but results in a poor user experience, and you know how to iterate to improve it.
  • Experience: 3+ years of experience in ML or Software Engineering roles, with at least 2+ years of hands-on experience building and scaling GenAI/LLM-powered features.
  • Self-starter, able to take ownership and initiative, with high energy and stamina
  • Decisive and action-oriented, able to make rapid decisions even when they are short of information
  • Highly motivated, independent and deeply passionate about sustainability and impact
  • Excellent oral and written English communication skills (minimum C1 level-proficient user)


Nice To Have ✨

  • Experience in a start-up
  • Cloud AI Ecosystem: Familiarity with managed GenAI platforms and services such as OpenAI, Anthropic, AWS Bedrock, or GCP Vertex AI.
  • Active Builder Credentials: A portfolio or GitHub showcasing side projects that experiment with the latest AI paradigms (e.g., multi-agent systems, local LLM execution, etc.).

What We Offer 🥁

  • Competitive compensation, both in terms of base salary as well as equity plans that enable to you to share in our success
  • Flexibility in ways of working both in terms of your schedule as well as your location, whether you prefer to work from home, the office, or abroad with access to a global network of co-working spaces 
  • Generous paid time off schemes, including vacation, sabbatical, religious observance and compensation days
  • Meaningful benefits including private healthcare coverage, fitness and wellness programs covered through Wellhub, working-from-home allowances to help you set up your home office and cover monthly expenses
  • Professional development with annual training budget for conferences, courses, certifications and access to top market e-learning platforms
  • Collaborative environment with multiple offices around the globe, regular team activities and events as well as employee-led resource groups

More About Clarity AI

Clarity AI’s Founder and CEO, Rebeca Minguela, is a successful entrepreneur who has been recognised by prestigious institutions like the World Economic Forum as one of the most distinguished leaders under 40.

The leadership team has an international presence and is composed of professionals from leading tech, consulting, and banking firms, entrepreneurs, PhDs from top research institutions, and MBA graduates from top business schools.

Clarity AI has received several awards: 

  • The Forrester New Wave - ESG Ratings, Data, and Analytics - Leaders for 2022-2024 
  • Investment Week - Best Sustainable Investment Research & Ratings Provider 2023
  • Fast Company - Most Innovative Companies 2023
  • European Commission | EU Seal of Excellence 2020
  • World Economic Forum - Technology Pioneer 2020
  • World Economic Forum, Young Global Leader - Rebeca Minguela

Clarity AI believes diversity, inclusion, and belonging are essential for creating an innovative and successful workplace. By actively promoting and engaging in sustainability efforts, we can help create a more equitable and resilient future for our planet and all its inhabitants.

Bereit, sich bei Clarity AI zu bewerben?
Bei Clarity AI bewerben

Über Clarity AI

 

For those who think big and build bigger, your next challenge starts here!

We are looking for excellent people to join us on our mission to bring societal impact to markets.

 

At Clarity AI, we are 300 dreamers with a mission to bring societal impact to markets. We operate at the intersection of AI technology and sustainability, continuously developing new ways to measure and optimize data, making it more accessible and empowering individuals and organizations to make more conscious and informed decisions. 

 

We are backed by leading investors who share our vision of a better world and we are proud to serve top-tier clients across the globe. Our credibility in the market stems from the trust we’ve built and the impact of our solutions that place environmental, social, and governance (ESG) considerations at the forefront of decision making. 

 

 

  

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