Singapore Upgrades Full-Year Economic Outlook
The Singapore economy grew 2.9% in the second quarter from a year earlier
The Singapore economy grew 2.9% in the second quarter from a year earlier
SINGAPORE—Singapore’s economic outlook seems brighter, as resilience in external demand and a recovery in the key electronics sector helps guard against headwinds elsewhere, the trade ministry said as it adjusted the city-state’s growth forecast for the year.
The Singapore economy grew 2.9% in the second quarter from a year earlier, according to revised data from the Ministry of Trade and Industry released on Tuesday. That matched the advance estimate compiled in July and compared with growth of 3.0% in the first quarter.
For the first half of the year, growth averaged 3.0%, the data showed.
Taking into account the performance of the Singapore economy in the first half, as well as global and domestic economic factors, MTI updated its full-year growth forecast to 2.0% to 3.0% from 1.0% to 3.0%.
Expansion in the April-to-June period was driven mainly by the wholesale trade, finance & insurance, and information & communications sectors, the ministry said. The manufacturing sector—a key engine of the economy—shrank in the quarter, largely due to a sharp fall in the volatile pharmaceuticals segment, the data showed. On the bright side, electronics returned to growth, backed by strong demand for smartphones, PCs and AI-related chips, it added.
“Singapore’s external demand outlook is expected to be resilient for the rest of the year. However, downside risks in the global economy remain,” the MTI said.
How other global trading partners fare is key for the trade-reliant economy of Singapore, which is well-placed to benefit from the global tech cycle upturn but exposed to downturns abroad.
A potential headwind could come from a slight slowdown in the U.S. economy, where MTI expects consumption growth to ease as the labor market softens. Growth in other advanced economies like the European Union and Japan is tipped to pick up, however.
Among Singapore’s major trading partners in Asia, MTI sees a slight slowdown in China in the second half of the year as investment growth tapers but thinks the property market will stabilize as government support measures kick in, boosting consumer sentiment. Growth in key Southeast Asian economies is projected to pick up slightly in the second half of the year as domestic demand strengthens, aided further by recoveries in global electronics and tourism demand.
Risks that could put the brakes on Singapore’s economic momentum include geopolitical and trade conflicts, which could hurt business sentiment and drive up production costs. Disruptions to the global disinflation process meanwhile could lead to higher for longer rates and trigger market volatility, MTI said.
“Against this backdrop, Singapore’s manufacturing sector is expected to see a gradual recovery in the second half of the year,” MTI said, expecting electronics to recover strongly.
Singapore’s GDP grew 0.4% on a quarter-over-quarter seasonally adjusted basis in the second quarter, the revised data showed. That matched both the advance estimate for the quarter, and was steady from the 0.4% expansion seen in the first quarter.
Meanwhile, data in a separate release from Enterprise Singapore showed that the city-state’s total merchandise trade expanded by 10% on the year in the second quarter, surging from the 4.8% growth seen in the first quarter.
Non-oil domestic exports slid 6.4% in the second quarter from a high base a year ago, widening the 3.4% decrease seen in the previous quarter, the data showed. Shipments of pharmaceuticals dragged on the results, but electronics grew for the first time in eight quarters.
Enterprise Singapore expects total trade to be supported by high oil prices, and the electronics recovery in the latter half of the year to boost exports, driven by demand in AI servers and consumer devices. Key downside risks for the NODX forecast remain, including a weaker-than-expected recovery in the final months of the year.
“Taking the above into consideration, the 2024 growth forecasts are narrowed to +5.0% to +6.0% for total merchandise trade and to +4.0% to +5.0% for NODX, from the earlier forecasts of +4.0% to +6.0% for both,” it said.
A divide has opened in the tech job market between those with artificial-intelligence skills and everyone else.
A 30-metre masterpiece unveiled in Monaco brings Lamborghini’s supercar drama to the high seas, powered by 7,600 horsepower and unmistakable Italian design.
A divide has opened in the tech job market between those with artificial-intelligence skills and everyone else.
There has rarely, if ever, been so much tech talent available in the job market. Yet many tech companies say good help is hard to find.
What gives?
U.S. colleges more than doubled the number of computer-science degrees awarded from 2013 to 2022, according to federal data. Then came round after round of layoffs at Google, Meta, Amazon, and others.
The Bureau of Labor Statistics predicts businesses will employ 6% fewer computer programmers in 2034 than they did last year.
All of this should, in theory, mean there is an ample supply of eager, capable engineers ready for hire.
But in their feverish pursuit of artificial-intelligence supremacy, employers say there aren’t enough people with the most in-demand skills. The few perceived as AI savants can command multimillion-dollar pay packages. On a second tier of AI savvy, workers can rake in close to $1 million a year .
Landing a job is tough for most everyone else.
Frustrated job seekers contend businesses could expand the AI talent pipeline with a little imagination. The argument is companies should accept that relatively few people have AI-specific experience because the technology is so new. They ought to focus on identifying candidates with transferable skills and let those people learn on the job.
Often, though, companies seem to hold out for dream candidates with deep backgrounds in machine learning. Many AI-related roles go unfilled for weeks or months—or get taken off job boards only to be reposted soon after.
It is difficult to define what makes an AI all-star, but I’m sorry to report that it’s probably not whatever you’re doing.
Maybe you’re learning how to work more efficiently with the aid of ChatGPT and its robotic brethren. Perhaps you’re taking one of those innumerable AI certificate courses.
You might as well be playing pickup basketball at your local YMCA in hopes of being signed by the Los Angeles Lakers. The AI minds that companies truly covet are almost as rare as professional athletes.
“We’re talking about hundreds of people in the world, at the most,” says Cristóbal Valenzuela, chief executive of Runway, which makes AI image and video tools.
He describes it like this: Picture an AI model as a machine with 1,000 dials. The goal is to train the machine to detect patterns and predict outcomes. To do this, you have to feed it reams of data and know which dials to adjust—and by how much.
The universe of people with the right touch is confined to those with uncanny intuition, genius-level smarts or the foresight (possibly luck) to go into AI many years ago, before it was all the rage.
As a venture-backed startup with about 120 employees, Runway doesn’t necessarily vie with Silicon Valley giants for the AI job market’s version of LeBron James. But when I spoke with Valenzuela recently, his company was advertising base salaries of up to $440,000 for an engineering manager and $490,000 for a director of machine learning.
A job listing like one of these might attract 2,000 applicants in a week, Valenzuela says, and there is a decent chance he won’t pick any of them. A lot of people who claim to be AI literate merely produce “workslop”—generic, low-quality material. He spends a lot of time reading academic journals and browsing GitHub portfolios, and recruiting people whose work impresses him.
In addition to an uncommon skill set, companies trying to win in the hypercompetitive AI arena are scouting for commitment bordering on fanaticism .
Daniel Park is seeking three new members for his nine-person startup. He says he will wait a year or longer if that’s what it takes to fill roles with advertised base salaries of up to $500,000.
He’s looking for “prodigies” willing to work seven days a week. Much of the team lives together in a six-bedroom house in San Francisco.
If this sounds like a lonely existence, Park’s team members may be able to solve their own problem. His company, Pickle, aims to develop personalised AI companions akin to Tony Stark’s Jarvis in “Iron Man.”
James Strawn wasn’t an AI early adopter, and the father of two teenagers doesn’t want to sacrifice his personal life for a job. He is beginning to wonder whether there is still a place for people like him in the tech sector.
He was laid off over the summer after 25 years at Adobe , where he was a senior software quality-assurance engineer. Strawn, 55, started as a contractor and recalls his hiring as a leap of faith by the company.
He had been an artist and graphic designer. The managers who interviewed him figured he could use that background to help make Illustrator and other Adobe software more user-friendly.
Looking for work now, he doesn’t see the same willingness by companies to take a chance on someone whose résumé isn’t a perfect match to the job description. He’s had one interview since his layoff.
“I always thought my years of experience at a high-profile company would at least be enough to get me interviews where I could explain how I could contribute,” says Strawn, who is taking foundational AI courses. “It’s just not like that.”
The trouble for people starting out in AI—whether recent grads or job switchers like Strawn—is that companies see them as a dime a dozen.
“There’s this AI arms race, and the fact of the matter is entry-level people aren’t going to help you win it,” says Matt Massucci, CEO of the tech recruiting firm Hirewell. “There’s this concept of the 10x engineer—the one engineer who can do the work of 10. That’s what companies are really leaning into and paying for.”
He adds that companies can automate some low-level engineering tasks, which frees up more money to throw at high-end talent.
It’s a dynamic that creates a few handsomely paid haves and a lot more have-nots.
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