| Code | Date | Format | Currency | Team of 10 Per Person* |
Team of 7 Per Person* |
Early Bird Fee Per Person |
Normal Fee Per Person |
|---|---|---|---|---|---|---|---|
| PWR1630 | 23 - 25 Nov 2026 | Kuala Lumpur, Malaysia | SGD | 3,009 | 3,149 | 3,299 | 3,499 |
| PWR1630 | 23 - 25 Nov 2026 | Kuala Lumpur, Malaysia | USD | 2,407 | 2,519 | 2,599 | 2,799 |
| PWR1630 | 23 - 25 Nov 2026 | Singapore | SGD | 3,267 | 3,419 | 3,599 | 3,799 |
| PWR1630 | 23 - 25 Nov 2026 | Singapore | USD | 2,579 | 2,699 | 2,799 | 2,999 |
*Fee per person in a team of 7 or 10 participating from the same organisation, registering 6 weeks before the course dateRequest for a quote if you have different team sizes, content customisation, alternative dates or course timing requirements Request for in-person classroom training or online (VILT) training format
Learn in teams and save more! Enjoy group discounts of up to 50% off normal fees for team based learning. Contact us on [email protected] to learn more today!
Code
PWR1630Date
23 - 25 Nov 2026Format
Kuala Lumpur, MalaysiaCurrency
SGDTeam of 10
Per Person*
3,009
Team of 7
Per Person*
3,149
Early Bird Fee
Per Person
3,299
Normal Fee
Per Person
3,499
Code
PWR1630Date
23 - 25 Nov 2026Format
Kuala Lumpur, MalaysiaCurrency
USDTeam of 10
Per Person*
2,407
Team of 7
Per Person*
2,519
Early Bird Fee
Per Person
2,599
Normal Fee
Per Person
2,799
Code
PWR1630Date
23 - 25 Nov 2026Format
SingaporeCurrency
SGDTeam of 10
Per Person*
3,267
Team of 7
Per Person*
3,419
Early Bird Fee
Per Person
3,599
Normal Fee
Per Person
3,799
Code
PWR1630Date
23 - 25 Nov 2026Format
SingaporeCurrency
USDTeam of 10
Per Person*
2,579
Team of 7
Per Person*
2,699
Early Bird Fee
Per Person
2,799
Normal Fee
Per Person
2,999
*Fee per person in a team of 7 or 10 participating from the same organisation, registering 6 weeks before the course dateRequest for a quote if you have different team sizes, content customisation, alternative dates or course timing requirements Request for in-person classroom training or online (VILT) training format
About this Training Course
Battery Energy Storage Systems (BESS) have moved from pilot projects to core power infrastructure. Rising demand for dependable power, the rapid build-out of renewables, and the fast growth of data centers and AI workloads are pushing utilities, developers, industrial users, and digital infrastructure operators to treat storage as a strategic asset rather than an add-on. Lithium-ion, together with sodium-based and other emerging chemistries, is now being deployed across utility, commercial and industrial, and mission-critical applications.
Storage delivers far more than energy shifting: peak demand management, backup power, load balancing, renewable integration, and grid resilience. The gap between an attractive datasheet and a safe, bankable, well-run project is where most of the value is won or lost. Professionals who plan, procure, or operate BESS therefore need a practical grasp of battery technologies, system architecture, sizing, project development, procurement, and operations, and of how these decisions interact.
This 3-day comprehensive training is grounded in practice rather than theory. It covers technology developments, system design, project economics, tendering and contracting, EPC delivery, operations, and the market outlook, using real project examples, industry case studies, and interactive exercises to connect concepts to the decisions participants actually face. Data centers receive dedicated attention on Day 3, where reliability, availability, redundancy, and integration with existing electrical infrastructure determine whether a BESS adds value or adds risk. Participants will examine system configuration, redundancy strategies, integration challenges, operations, and maintenance in that context.
By the end of the course, participants will be able to assess project requirements with confidence, ask sharper questions in design and procurement discussions, and support well-founded decisions on the deployment and operation of BESS.
By the end of this 3-day training course, participants will be able to:
- Distinguish the main battery chemistries and BESS technologies, and map the key industry players and market trends across cells, integrated systems, and components.
- Apply the principles of BESS system design and performance optimisation, and evaluate project economics (CAPEX, OPEX, LCOS), including how degradation, augmentation, and contract structure drive returns.
- Navigate tendering, procurement, EPC delivery, commissioning, testing, and operation and maintenance, with a clear view of guarantees, red flags, liquidated damages, and asset management practice.
- Evaluate the design and integration of BESS in data center environments, with emphasis on reliability, redundancy, and operational requirements.
- Utility Engineers involve in energy management and grid integration.
- Project Managers overseeing battery storage projects.
- Data Center Engineers and Facility Managers responsible for energy efficiency and reliability.
- IT infrastructure specialists focusing on power supply and backup solutions.
- Energy Consultants advising organisations on energy storage solutions and strategies.
- Market Analysts studying trends in battery technologies and energy storage.
- Renewable Energy Developers participating in integrating renewable sources with battery storage systems.
- Project Developers aiming on sustainable energy solutions.
- Battery Manufacturers and Suppliers from companies producing battery technologies or components.
- Regulatory and Compliance Officers ensuring adherence to industry regulations regarding energy storage systems.
- EPC (Engineering, Procurement, Construction) professionals responsible in BESS projects.
- Contractors specialising in the construction of data centers and energy systems.
- Financial Analysts assessing the economic viability of BESS projects.
- Operations Managers overseeing the performance of energy storage installations.
- Investors, Lenders, and Strategy Consultants evaluating BESS and data center power opportunities.
- Intermediate
This course will provide comprehensive learning resources, including course materials for future reference. Each topic will commence with a clearly defined intended learning outcome (LO). The learning experience will be enriched through diverse activities such as quizzes, videos, and assessments, ensuring engagement and understanding. In addition to the core material, participants will have access to additional resources like articles, case studies, and tools. The course structure incorporates interactive elements, such as group discussions, case studies, and practical exercises, enhancing hands-on learning experiences. Q&A sessions will provide opportunities for clarifications and deeper understanding.
Unlock the potential of your workforce with customized in-house training programs designed specifically for the energy sector. Our tailored, in-house courses not only enhance employee skills and engagement but also offer significant cost savings by eliminating travel expenses. Invest in your team’s success and achieve specific outcomes aligned with your organization’s goals through our expert training solutions. Request for further information regarding our on-site or in-house training opportunities.
In our ongoing commitment to sustainability and environmental responsibility, we will no longer providing hard copy training materials. Instead, all training content and resources will be delivered in digital format. Inspired by the oil and energy industry’s best practices, we are leveraging on digital technologies to reduce waste, lower our carbon emissions, ensuring our training content is always up-to-date and accessible. Click here to learn more.
BESS design implementation and operations covers the full lifecycle of a Battery Energy Storage System. Engineers select the battery technology, size the system, and design the electrical integration. Project teams then manage procurement, installation, commissioning, monitoring, and maintenance. A well-designed BESS matches power and energy capacity with the required application. Operators also manage degradation, safety, availability, and performance throughout the asset life.
Battery Energy Storage Systems can support peak shaving, backup power, load balancing, renewable energy integration, and grid resilience. They can also provide energy arbitrage, capacity support, and ancillary grid services. However, battery systems face challenges such as degradation, safety risks, augmentation costs, and integration requirements. Battery life, efficiency, operating strategy, and electricity prices can also affect project economics.
Organizations can deploy Battery Energy Storage Systems in utility grids, renewable energy projects, industrial facilities, commercial buildings, microgrids, and data centers. BESS can manage peak demand, balance renewable generation, provide backup power, and support grid services. Data centers can use battery storage to strengthen power resilience and manage growing electricity demand. Engineers select the system configuration according to the load profile, grid connection, reliability requirements, and operating strategy.
A UPS supplies immediate short-duration power during an outage or electrical disturbance. A generator can deliver longer backup power when sufficient fuel remains available. BESS can provide backup power while also supporting peak shaving, energy management, and grid services. Some facilities combine BESS, UPS systems, and generators to improve overall resilience. Engineers usually compare runtime, response time, redundancy, reliability, cost, and electrical architecture before selecting a configuration.
The main challenges in BESS design implementation and operations include system sizing, battery degradation, safety, grid integration, and lifecycle costs. Engineers must also coordinate the Battery Management System, Energy Management System, power conversion system, HVAC, fire protection, SCADA, and electrical infrastructure. Procurement teams must assess warranties, performance guarantees, availability commitments, and contractor responsibilities. Effective commissioning, monitoring, and maintenance can improve reliability throughout the system lifecycle. BESS Design Implementation and …
Lithium iron phosphate, or LFP, continues to play a major role in stationary battery storage. The industry also continues to develop sodium-ion batteries, flow batteries, and other long-duration storage technologies. Future BESS projects may support more renewable generation, grid flexibility, and high-demand facilities such as data centers. Growth in AI-related electricity demand may also increase the need for flexible energy storage. Battery costs, supply chains, local manufacturing, regulation, recycling, and new technologies will influence future BESS deployment.


