At a Glance
- Tasks: Design and implement cutting-edge RL-based decision systems for the energy sector.
- Company: Join a pioneering AI company focused on sustainable energy solutions.
- Benefits: Competitive salary, flexible work options, and opportunities for professional growth.
- Other info: Be part of a dynamic team driving real-world change in energy operations.
- Why this job: Make a real impact in the energy industry with innovative AI technologies.
- Qualifications: PhD in relevant fields and extensive RL research experience required.
The predicted salary is between 59400 - 72600 £ per year.
- Sequential decision-making
Applied Computing was founded in 2024 to build Orbital, a physics-informed foundation model for energy operations.
We’re live across oil and gas, refineries, and petrochemicals, working towards our mission: sustainable abundance for a growing planet.
The hydrocarbon industry keeps the world running.
But its complexity has left operators tied to legacy systems, making critical decisions on less than 10% of available data.
We built Orbital to change that.
It’s a foundation model built specifically for energy that lets companies use AI at scale, harnessing all of their operational data and optimising in real time for any metric.
Decisions get faster, operations get safer, and carbon intensity falls.
We’ve raised over $32 million, including one of the largest seed rounds for an AI company in the UK. We’re just getting started
- What You’ll Own
- Orbital’s learning-based optimisation and control stack
- RL + control hybrid systems for industrial processes
- Safe and constrained policy learning frameworks
- Simulation environments and digital twin integrations
- Research → production translation for RL systems
- Benchmarking standards for decision-making systems
- Must-Have Qualifications
- Ph D in Computer Science, Robotics, Control, Applied Mathematics, or related field
• First-author publications in
- Reinforcement Learning
- Control systems
- Sequential decision-making
- 3+ years of hands‑on RL research experience
- Strong Foundation In
- Reinforcement Learning (online + offline)
- Optimisation and control theory (MPC, dynamic programming, etc.)
- Deep learning (Py Torch)
Experience With
- Real‑world deployment of ML systems
- Simulation environments or digital twins
- Working with noisy, real‑world data
- How We Work
- Research is judged by production impact, not paper count
- We optimise for real systems, not benchmarks alone
- We value safe, reliable decision‑making over theoretical elegance
- Physics, control, and learning are treated as one system
- What This Role Is Not
- Not toy RL environments (Atari, Mu Jo Co‑only thinking)
- Not unconstrained policy learning without safety guarantees
- Not offline research disconnected from deployment
- Not a support role; this position owns core optimisation IP
- Core Responsibilities
- Design & Implement RL‑Based Decision Systems
- Process optimisation (yield, efficiency, cost reduction)
- Control policy learning (setpoint optimisation, constraint handling)
- Sequential decision‑making under uncertainty
- Work Across
- Model‑free RL (policy gradients, actor‑critic, offline RL)
- Model‑based RL (world models, planning‑based methods)
- Hybrid approaches combining RL with optimisation / MPC
- Build Physics‑Constrained RL Systems
- Embed Domain Knowledge Into Policy Learning
- Hard constraints (safety, operating limits, regulatory bounds)
- Soft constraints (efficiency, degradation, economic trade‑offs)
- Physics‑informed reward shaping and transition models
- Ensure Policies
- Respect physical feasibility
- Generalise across operating regimes
- Remain stable under real‑world disturbances
- Offline RL, Simulation & Digital Twin Integration
- Develop RL systems that work in data‑scarce and risk‑sensitive environments
- Offline RL from historical plant data
- Simulation‑based training via digital twins
- Sim‑to‑real transfer strategies
- Handle
- Distribution shift
- Partial observability
- Sparse / delayed rewards
- Safety, Robustness & Interpretability
- Design Safe RL Systems For Production Environments
- Constrained RL / safe exploration
- Policy validation before deployment
- Fail‑safe mechanisms and fallback strategies
- Ensure Outputs Are
- Interpretable to engineers and operators
- Auditable and explainable
- Reliable under sensor faults and regime changes
- Production‑Grade Deployment
- Deploy RL Systems Into Real‑world Infrastructure
- Containerised deployment (Docker, AWS / Azure)
- Integration with control systems (APC, DCS, advisory layers)
- Real‑time inference and monitoring
- Build Pipelines For
- Continuous policy evaluation
- Safe rollout and rollback
- Online / batch policy updates
- Benchmarking & Validation
- Define Evaluation Standards For RL Systems
- Offline policy evaluation
- Counterfactual analysis
- Comparison vs MPC, heuristics, and operator baselines
- Ensure
- Measurable economic impact
- Reproducible results
- Defensible performance claims
Applied computing is one of its kind revolution with a mission to deliver sustainable abundance for a growing planet, through AI that works for the Energy Industry
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Reinforcement Learning Researcher in Harrow employer: Applied Computing
Applied Computing is an excellent employer, offering a dynamic work culture that fosters innovation and collaboration in the rapidly evolving energy sector. With competitive salaries, hybrid working options, and ample opportunities for professional growth, employees are empowered to make meaningful contributions while enjoying a flexible work-life balance.
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